参考文献库(有重复)

[1]   Adams S, Titus R, Pietersen K, Tredoux G and Harris C. 2001. Hydrochemical characteristics of aquifers near Sutherland in the Western Karoo, South Africa. Journal of Hydrology 241: 91-103.

[4]   Aguilera E, Cioni R, Gherardi F, Magro G, Marini L, Pang Z (2005) Chemical and isotope characteristics of the Chachimbiro geothermal fluids, Ecuador. Geothermics, 34: 495-517.

[5]   Aizen, V., Aizen, E., Melack, J. and Martma, T. 1996. Isotopic measurements of precipitation on central Asian glaciers (southeastern Tibet, northern Himalayas, central Tien Shan). J. Geophys. Res., 101(D4), 9185–9196.

[6]   Aizen, V., E. Aizen, K. Fujita, S. Nikitin, K. Kreutz, and T. Nozomu (2005), Stable-isotope time series and precipitation origin from firn-core and snow samples, Altai glaciers, Siberia, J. Glaciol., 51, 637–654.

[7]   Alim T and Xu W (2003) Study on the Groundwater Movement in the Vicinities Along the River Channel of Stream Water Transportation to the Lower Reaches of Tarim River, Xinjiang. Arid Land Geography, 26(2): 129-135.

[9]   Allen RG, Howell TA, Pruitt WO, Walter IA, Jensen ME. 1991. Lysimeters for evapotranspiration and environmental measurements. P. 44. In Proc. Int. Symp. Lysimetry, Honolulu, HI. July 23-25, 1991. Am. Soc. Civ. Eng., New York.

[10] Allison GB and Hughes MW (1983) The use of natural tracers as indicators of soil-water movement in a temperate semi-arid region. J Hydrol 60:157-173

[11] Allison GB, Barnes CJ, Hughes MW and Leaney FWJ. (1984) Effect of climate and vegetation on oxygen-18 and deuterium profile in soils. In: Isotope Hydrology, IAEA Symposium 270, September 1983, Vienna: 105-123.

[12] Allison GB, Barnes CJ, Hughes MW, Leaney FW. 1984. Effect of climate and vegetation on oxygen-18 and deuterium profiles in soils. In: Isotope Hydrology, pp 105-122. IAEA, Vienna.

[13] Allison GB, Cook PG, Barnett SR, Walker GR, Jolly ID, Hughes MW (1990) Land clearance and river salinisation in the western Murray Basin, Australia. J Hydrol 119:1-20

[14] Allison GB, Gee GW, Tyler SW. 1994. Vadose-zone techniques for estimating groundwater recharge in arid and semiarid regions. Soil Sci. Soc. Am. J. 58: 6-14.

[15] Allison GB, Hughes MW (1978) The use of environmental chloride and tritium to estimate total recharge of an unconfined aquifer. Aust J Soil Res 16:181-195

[16] Allison, G. B. (1988), A review of some of the physical, chemical and isotopic techniques available for estimating groundwater recharge, in Estimation of natural groundwater recharge, edited by I. Simmers, pp. 49-72, Reidel, Dordrecht.

[17] Allison, G. B., and M. W. Hughes (1978), The use of environmental chloride and tritium to estimate total recharge to an unconfined aquifer, Aust. J. Soil Res., 16, 181-195, doi:10.1071/SR9780181.

[18] Allison, G. B., and M. W. Hughes (1983), The use of natural tracers as indicators of soil-water movement in a temperate semi-arid region, J. Hydrol., 60, 157-173, doi:10.1016/0022-1694(83)90019-7.

[19] Allison, G. B., G. W. Gee, and S. W. Tyler (1994), Vadose-zone techniques for estimating groundwater recharge in arid and semiarid regions, Soil Sci. Soc. Am. J., 58, 6-14, doi:10.2136/sssaj1994.03615995005800010002x.

[20] Allison, G. B., P. G. Cook, S. R. Barnett, G. R. Walker, I. D. Jolly, and M. W. Hughes (1990), Land clearance and river salinisation in the western Murray Basin, Australia, J. Hydrol., 119, 1-20, doi:10.1016/0022-1694(90)90030-2.

[21] Allison, G. B., Stone, W. J., and Hughes, M. W., 1985. Recharge in karst and dune elements of a semi-arid landscape as indicated by natural isotopes and chloride. J. Hydrol., 76: 1-26.

[22] Allison, G.B. and Hughes, H.W., 1983. The use of natural tracers as indicators of soil water movement in a temperate semi-arid region. J. Hydrol., 60: 157-173.

[23] Allison, G.B. and Hughes, M.W. 1974. The use of environmental tritium to estimate recharge to a South-Australian Aquifer. J. Hydrol. 26, 245-254.

[24] Allison, G.B. and Hughes, M.W. 1978. The use of environmental chloride and tritium to estimate total recharge to an unconfined aquifer. Australian Journal of Soil Research, 16:181–195.

[25] Allison, G.B., Cook, P.G., Barnett, S.R., Walker, G.R., Jolly, I.D., Hughes, M.W., 1990. Land clearance and river salinisation in the western Murray Basin, Australia. J. Hydrol. 119, 1-20.

[26] Allison, G.B., Cook, P.G., Barnett, S.R., Walker, G.R., Jolly, I.D., Hughes, M.W., 1990. Land clearance and river salinisation in the western Murray Basin, Australia. J. Hydrol. 119, 1-20.

[27] Allison, G.B., Hughes, M.W., 1978. The use of environmental chloride and tritium to estimate total recharge of an unconfined aquifer. Aust. J. Soil Res. 16, 181-195.

[28] Allison, G.B., Hughes, M.W., 1983. The use of natural tracers as indicators of soil-water movement in a temperate semi-arid region. J. Hydrol. 60, 157-173.

[29] Allison, G.B., Stone, W.J., Hughes, M.W., 1985. Recharge in karst and dune elements of a semi-arid landscape as indicated by natural isotopes and chloride. J. Hydrol. 76, 1-25.

[30] Allison, GB, 1988. A review of some of the physical, chemical and isotopic techniques available for estimating groundwater recharge. In Estimation of natural groundwater recharge, ed. I. Simmers, pp 49-72. reidel, Dordrecht.

[31] An ZS, Kukla GJ, Porter SC and Xiao JL. 1991. Magnetic susceptibility evidence of monsoon variation on the Loess Plateau of central China during the last 130,000 years. Quaternary Research. 36: 29-36.

[32] An ZS, Kukla GJ, Porter SC, Xiao J (1991) Magnetic susceptibility evidence of monsoon variation on the Loess Plateau of central China during the last 130,000 years. Quaternary Res 36:29-36

[33] Appelo, C. A. J., and D. Postma (1993), Geochemistry, Groundwater and Pollution, A. A. Balkema, Rotterdam, 536 pp.

[34] Appelo, C. A. J., Postma, D., 1993. Geochemistry, Groundwater and Pollution. A. A. Balkema, Rotterdam, 536 pp.

[35] Appelo, C. A. J., Postma, D., 1993. Geochemistry, Groundwater and Pollution. A. A. Balkema, Rotterdam, 536 pp.

[36] Araguas-Araguas L, Froehlich K, Rozanski K. 1998. Stable isotope composition of precipitation over southeast Asia. Journal of Geophysical Research, 103(D22): 28,721-28,742.

[37] Araguás-Araguás, L., Froehlich, K. and Rozanski, K. 1998. Stable isotope composition of precipitation over southeast Asia. J. Geophys. Res., 103(D22), 28,721–28,742.

[38] Araguás-Araguás, L., K. Froehlich, and K. Rozanski (1998), Stable isotope composition of precipitation over southeast Asia, J. Geophys. Res., 103(D22), 28721-28742, doi:10.1029/98JD02582.

[39] Araguas-Araguas, L., Rozanski, K., Gonfiantini, R., Louvat, D. 1995. Isotope effects accompanying vacuum extraction of soil water for stable isotope analyses. Journal of Hydrology, 168:159-171.

[40] Bahati G, Pang Z, Armannsson A, Isabirye E, Kato V (2005) Hydrology and reservoir characteriscs of three geothermal systems in western Uganda. Geothermics, 34: 568-591.

[41] Baillie, M. N., Hogan, J. F., Ekwurzel, B., Wahi, A.K., Eastoe, C.J., 2007. Quantifying water sources to a semiarid riparian ecosystem, San Pedro River, Arizona. Journal of Geophysical Research G03S02, doi:10.1029/2006JG000263.

[42] Baillie, M. N., J. F. Hogan, B. Ekwurzel, A. K. Wahi, and C. J. Eastoe (2007), Quantifying water sources to a semiarid riparian ecosystem, San Pedro River, Arizona, J. Geophys. Res., 112, G03S02, doi:10.1029/2006JG000263.

[43] Baran N, Richert J, Mouvet C (2007) Field data and modelling of water and nitrate movement through deep unsaturated loess. J Hydrol 345:27-37

[44] Baran, N., J. Richert, and C. Mouvet (2007), Field data and modelling of water and nitrate movement through deep unsaturated loess, J. Hydrol., 345, 27-37, doi:10.1016/j.jhydrol.2007.07.006.

[45] Baran, N., Richert, J., Mouvet, C., 2007. Field data and modelling of water and nitrate movement through deep unsaturated loess. J. Hydrol. 345, 27-37.

[46] Baran, N., Richert, J., Mouvet, C., 2007. Field data and modelling of water and nitrate movement through deep unsaturated loess. J. Hydrol. 345, 27-37.

[47] Bath AH, Darling WG, Brunsden AP. 1982. The stable isotopic composition of infiltration moisture in the unsaturated zone of English Chalk. In: HL Schmidt (ed.) Stable Isotopes. Elsevier, Amsterdam, pp 161-166.

[48] Bennetts D.A., Webb J.A., Stone D.J.M., Hill D.M. (2006) Understanding the salinisation process for groundwater in an area of south-eastern Australia, using hydrochemical and isotopic evidence. Journal of Hydrology 323: 178–192

[49] Bennetts, D.A., Webb, J.A., Stone, D.J.M., Hill, D.M., 2006. Understanding the salinisation process for groundwater in an area of south-eastern Australia, using hydrochemical and isotopic evidence. Journal of Hydrology 323, 178-192.

[50] Bierkens M. 2010. Groundwater stores running dry. Geophys. Res. Lett. doi:10.1029/2010GL044571.

[51] Boano F., A. Demaria, R. Revelli and L. Ridolfi, Biogeochemical zonation due to intrameander hyporheic flow, Water Resour Res 46 (2010)

[52] Bohlke JK (2002) Groundwater recharge and agricultural contamination. Hydrogeology Journal 10(1): 153-179.

[53] Böhlke, J. K. (2002), Groundwater recharge and agricultural contamination, Hydrogeol. J., 10, 153-179, doi: 10.1007/s10040-002-0210-z.

[54] Brubaker, K. L., P. A. Dirmeyer, A. Sudradjat, B. S. Levy, F. Bernal (2001), A 36-year climatological description of the evaporative sources of warm-season precipitation in the Mississippi River Basin, J. Hydrometeorol., 2(6), 537-557.

[55] Bultot, F., Dupriez G.L., Gellens, D., 1990. Simulation of land use changes and impacts on the water balance-A case study for Belgium. J. Hydrol. 114, 327-348.

[56] Burkart MR, Kolpin DW(1993) Hydrologic and land use factors associated with herbicides and nitrates in near-surface aquifers. Journal of Environmental Quality 22: 646–656.

[57] Burns D A. Stormflow-hydrograph separation based on isotopes: the thrill is gone - what's next? [J]. Hydrological Process, 2002, 16: 1515-1517.

[58] Burt TP, Pinay G, Matheson FE, Haycock NE, Butturini A, Clement J., Danielescu S, Dowrick DJ, Hefting MM, Hillbricht-Ilkowska A (2002) Water table fluctuations in the riparian zone: comparative results from a pan-European experiment. Journal of Hydrology 265(1-4): 129-148

[59] Butler, M.J. and Verhagen, B.Th. Isotope studies of a thick unsaturated zone in a semi-arid area of Southern Africa. In: Isotope based assessment of groundwater renewal in water scarce regions: Proceedings of a Final Research Co-ordination meeting, 18-21 October 1999, Vienna, IAEA, 45-70.

[60] Cai C, Bo M, Ma T, Chen C, Li W, Liu, C. 1997. Approach to fluid-rock interaction in the Tarim basin. Geological Publishing House, Beijing, China. pp155.

[61] Cai, C., Bo, M., Ma, T., Chen, C., Li, W., Liu, C., 1997. Approach to fluid-rock interaction in the Tarim basin. Geological Publishing House, Beijing. 155pp.

[62] Cao S. 2008. Why large-scale afforestation efforts in china have failed to solve the desertification problem. Environmental Science & Technology, May 15th, 1826-1831.

[63] Cardenas M.B., P.L.M. Cook, H.S. Jiang and P. Traykovski, Constraining denitrification in permeable wave-influenced marine sediment using linked hydrodynamic and biogeochemical modeling, Earth Planet Sci Lett 275 (2008), pp. 127–137.

[64] CAS, Tibet Expedition Team of Chinese Academy of Sciences. Geological Evolutions in the mountains of Kalakunlun and Kunlun (in Chinese). Beijing: Science Press, 2000. pp525

[65] CCAG-Committee on County Annals of Guyuan (1993), County Annals of Guyuan (in Chinese), Ningxia People's Publishing House, Yinchuan, Ningxia, 1095 pp.

[66] CCAG-Committee on County Annals of Guyuan, 1993. County Annals of Guyuan (in Chinese). Ningxia People's Publishing House, Yinchuan, Ningxia, 1095pp.

[67] CCGS-Committee on Chinese Groundwater Science (2009) Opportunities and challenges in Chinese groundwater science. Science Press, Beijing, 199 pp (in Chinese)

[68] Chapman, J.B., Lewis, B., Litus, G., 2008. Chemical and isotopic evaluation of water sources to the fens of South Park, Colorado. Environmental Geology 43, 533-545.

[69] Chen HS, Shao MA, Li YY (2008) Soil desiccation in the Loess Plateau of China. Geoderma 143:91-100

[70] Chen JY, Tang C, Sakura Y, Kondoh A, Yu J, Shimada J, Tanaka T (2004) Spatial geochemical and isotopic characteristics associated with groundwater flow in the North China Plain. Hydrological Processes 18: 3133-3146

[71] Chen JY, Tang C, Sakura Y, Yu J, Fukushima Y (2005) Nitrate pollution from agriculture in different hydrogeological zones of the regional groundwater flow system in the North China Plain. Hydrogeology Journal 13: 481-492

[72] Chen JY, Tang C, Shen YJ, Sakura Y, Kondoh A, Shimada J (2003) Use of water balance calculation and tritium to examine the dropdown of groundwater table in the piedmont of the North China Plain (NCP). Environmental Geology 44: 564-571

[73] Chen JY, Tang CY, Yu JJ (2006) Use of O-18, H-2 and N-15 to identify nitrate contamination of groundwater in a wastewater irrigated field near the city of Shijiazhuang, China. Journal of Hydrology 326: 367-378.

[74] Chen Y, Pang Z, Chen YP, Li WH, Xu CC, Hao XM, Huang X, Huang TM, Ye ZX (2008) Response of riparian vegetation to water-table changes in the lower reaches of Tarim River, Xinjiang Uygur, China. Hydrogeology Journal, 16: 1371-1379.

[75] Chen Y, Pang Z, Hao XM, Xu CC, Chen YP (2008) Periodical changes of surface runoff in the last 40 years in Tarim River Basin. Hydrological Processes, 22: 4214-4221.

[76] Chen YJ, Zhou K, Chen YN, Li W, Liu J, Wang T. 2008a. Response of groundwater chemistry to water deliveries in the lower reaches of Tarim River, Northwest China. Environmental Geology 53:1365-1373.

[77] Chen YJ, Zhou K, Chen YN, Li W, Liu J, Wang T. 2008a. Response of groundwater chemistry to water deliveries in the lower reaches of Tarim River, Northwest China. Environmental Geology 53:1365-1373.

[78] Chen YL. 2007. Land cover changes of the middle reaches of the Tarim River based on remote sensing and GIS technology. Master Thesis. Shihezi University, Xinjiang, China. pp15.

[79] Chen YL. 2007. Land cover changes of the middle reaches of the Tarim River based on remote sensing and GIS technology. Master Thesis. Shihezi University, Xinjiang, China.

[80] Chen YN, Chen YP, Li W, Zhang H. 2003. Response of the accumulation of proline in the bodies of Populus euphratica to the change of ground water level at the lower reaches of Tarim River. Chinese Science Bulletin 48(18): 1995-1999.

[81] Chen YN, Chen YP, Li W, Zhang H. 2003. Response of the accumulation of proline in the bodies of Populus euphratica to the change of ground water level at the lower reaches of Tarim River. Chinese Science Bulletin 48(18): 1995-1999.

[82] Chen YN, Pang Z, Chen YP, Li W, Xu C, Hao X, Huang X, Huang T, Ye Z. 2008b. Response of riparian vegetation to groundwater level changes in the lower reaches of Tarim River, Xinjiang, China. Hydrogeology Journal 16: 1371-1379.

[83] Chen YN, Pang Z, Chen YP, Li W, Xu C, Hao X, Huang X, Huang T, Ye Z. 2008b. Response of riparian vegetation to groundwater table changes in the lower reaches of Tarim River, Xinjiang, China. Hydrogeology Journal doi: 10.1007/s10040-008-0306-1.

[84] Chen YN, Pang Z, Hao X, Xu C, Chen YP. 2008c. Periodic changes of stream flow in the last 40 years in Tarim River Basin, Xinjiang, China. Hydrological Processes 22, 4214-4221.

[85] Chen YN, Pang Z, Hao X, Xu C, Chen YP. 2008c. Periodic changes of stream flow in the last 40 years in Tarim River Basin, Xinjiang, China. Hydrological Processes doi: 10.1002/hyp.7024.

[86] Chen YN, Zilliacus H, Li W, Zhang H, Chen YP. 2006. Ground-water lever affects plant species diversity along the lower reaches of the Tarim River. Journal of Arid Environments 66: 231-246.

[87] Chen YN, Zilliacus H, Li W, Zhang H, Chen YP. 2006. Ground-water lever affects plant species diversity along the lower reaches of the Tarim River. Journal of Arid Environments 66: 231-246.

[88] Chen ZY, Bi ES, Nie ZL, Ye H, Nan YJ (2001) A Tentative Discussion on Palehydrological and Paleoclimatical Information from Unsaturated Zone Profile. Acta Geosci Sin 22(4):335-339 (in Chinese)

[89] Chen, H. S., M. A. Shao, and Y. Y. Li (2008), Soil desiccation in the Loess Plateau of China, Geoderma, 143, 91-100, doi:10.1016/j.geoderma.2007.10.013.

[90] Chen, H.S., Shao, M.A. and Li, Y.Y. 2008a. Soil desiccation in the Loess Plateau of China. Geoderma, 2008, 143: 91-100.

[91] Chen, H.S., Shao, M.A., Li, Y.Y. 2008b. The characteristics of soil water cycle and water balance on steep grassland under natural and simulated rainfall conditions in the Loess Plateau of China. Journal of Hydrology, 360: 242-251.

[92] Chen, H.S., Shao, M.A., Li, Y.Y., 2008. Soil desiccation in the Loess Plateau of China. Geoderma 143, 91-100.

[93] Chen, J., 2008. The formation mechanism of high fluoride concentration in groundwater in alluvial/diluvial fan of Tailan River, Wensu. Henan Water Resources & South-to-North Water Diversion 53(2), 59-61.

[94] Chen, Y., Pang, Z., Hao, X., Xu, C., Chen Y., 2008. Periodic changes of stream flow in the 327 last 40 years in Tarim River Basin, Xinjiang, China, Hydrol. Process., 22(21), 4214-4221.

[95] Chen, Y.J., Zhou, K., Chen, Y.N., Li, W., Liu, J., Wang, T., 2008a. Response of groundwater chemistry to water deliveries in the lower reaches of Tarim River, Northwest China. Environmental Geology 53, 1365-1373.

[96] Chen, Y.N., Chen, Y.P., Li, W., Zhang, H., 2003. Response of the accumulation of proline in the bodies of Populus euphratica to the change of ground water level at the lower reaches of Tarim River. Chinese Science Bulletin 48(18), 1995-1999.

[97] Chen, Y.N., Pang, Z., Chen, Y.P., Li, W., Xu, C., Hao, X., Huang, X., Huang, T., Ye, Z., 2008b. Response of riparian vegetation to water-table changes in the lower reaches of Tarim River, Xinjiang Uygur, China. Hydrogeology Journal 16, 1371-1379.

[98] Cheng Q. 1993 Tarim River Research. Hohai University Press, Nanjing, China, pp246.

[99] Cheng Q. 1993 Tarim River Research. Hohai University Press, Nanjing, pp246

[100]      Cheng, Q., 1993 Tarim River Research. Hohai University Press, Nanjing, 246pp.

[101]      Chilton PJ (1999) Groundwater in the urban environment. Vol 2: Selected city profiles. IAH Int Contrib Hydrogeol 21. AA Balkema, Rotterdam, 342 pp

[102]      Clark I, Fritz P. 1997. Environmental Isotopes in Hydrogeology. Lewis, Boca Raton, pp328.

[103]      Clark I, Fritz P. 1997. Environmental Isotopes in Hydrology. Lewis, Boca Raton. CRC Press/Lewis Publishers, Boca Raton, pp328.

[104]      Clark, I. D., and P. Fritz (1997), Environmental Isotopes in Hydrogeology, Lewis, Boca Raton, 328 pp.

[105]      Clark, I.D. and Fritz, P. 1997. Environmental Isotopes in Hydrogeology. Lewis, Boca Raton, pp 328

[106]      Cook PG and Herzeg AL. 2000. Environmental Tracers in Subsurface hydrology. Kluwer, Boston pp 328.

[107]      Cook PG and Walker G. 1996. Evaluation of the use of 3H and 36Cl to estimate groundwater recharge in arid and semi-arid environments. In: Isotopes in Water Resources Management. IAEA, Vienna, 397-403.

[108]      Cook PG and Walker G. 1996. Evaluation of the use of 3H and 36Cl to estimate groundwater recharge in arid and semi-arid environments. In Isotopes in Water Resources Management. IAEA, Vienna, 397-403.

[109]      Cook PG, Edmunds WM, Gaye CB (1992) Estimating paleorecharge and paleoclimate from unsaturated zone profiles. Water Resour Res 28: 2721-2731

[110]       Cook, P. G., F. W. Leaney, and I. D. Jolly (2001), Groundwater recharge in the Mallee region and salinity implications for the Murray River, Land Water Tech. Rep. 45/01, 133 pp., CSIRO Publ., Collingwood, Vic., Australia.

[111]       Cook, P. G., F. W. Leaney, and I. D. Jolly. 2001. Groundwater recharge in the mallee region and salinity implications for the Murray River—A review, Tech. Rep. 45/01, 133 pp., CSIRO Land and Water, Adelaide, South Aust., Australia.

[112]       Cook, P. G., F. W. Leaney, and M. Miles (2004), Groundwater recharge in the north-east mallee region, South Australia, Tech. Rep. 25/04, 80 pp., CSIRO Land and Water, Adelaide, South Aust., Australia.

[113]       Cook, P. G., Leaney, F. W., Jolly, I. D., 2001. Groundwater recharge in the mallee region and salinity implications for the Murray River-A review. Tech. Rep. 45/01, CSIRO Land and Water, Adelaide, South Australia. 133pp.

[114]       Cook, P. G., M. W. Hughes, G. R. Walker, and G. B. Allison (1989), The calibration of frequency-domain electromagnetic induction meters and their possible use in recharge studies, J. Hydrol., 107, 251-265, doi:10.1016/0022-1694(89)90060-7.

[115]       Cook, P.G., Edmunds, W.M. and Gaye, C.B. 1992. Estimating paleorecharge and paleoclimate from unsaturated zone profiles. Water Resources Research, 28: 2721-2732.

[116]       Cook, P.G., Edmunds, W.M., Gaye, C.B., 1992. Estimating paleorecharge and paleoclimate from unsaturated zone profiles. Water Resour. Res. 28, 2721-2731.

[117]       Cook, P.G., Jolly, I.D., Leaney, F.W., Walker, G.R., Allan, G.L., Fifield, L.K. & Allison, G.B. 1994. Unsaturated zone tritium and chlorine-36 profiles from southern Australia: their use as tracers of soil water movement. Water Resourcse Research, 30: 1709-1719.

[118]       Coplen TB, Herczeg AL, and Barnes C. 2000. Isotope Engineering—Using Stable isotopes of the water molecule to solve practical problems. In: Cook P and Herzeg AL. Environmental Tracers in Subsurface Hydrology. Kluwer, Boston., pp 79-110.

[119]       Coplen TB, Herczeg AL, Barnes C. 2000. Isotope Engineering—Using Stable isotopes of the water molecule to solve practical problems. In: Environmental Tracers in Subsurface Hydrology. P.G. Cook & A.L. Herczeg (eds). Kluwer, Boston. 79-110.

[120]      Coplen TB, Herczeg AL, Barnes C. 2000. Isotope Engineering—Using Stable isotopes of the water molecule to solve practical problems. In Environmental Tracers in Subsurface Hydrology. Cook PG and Herzeg AL (eds). Kluwer, Boston. 79-110.

[121]      Coplen, T. B., A. L. Herczeg, and C. Barnes (2000), Isotope Engineering-Using Stable isotopes of the water molecule to solve practical problems, In Environmental Tracers in Subsurface Hydrology, edited by P. G. Cook and A. L. Herzeg, pp. 79-110, Kluwer, Boston.

[122]      Craig H. (1961) Isotopic variations in meteoric waters. Science, 133: 1702-1703.

[123]      Craig H. 1961. Isotopic variations in meteoric waters. Science 133: 1702-1703.

[124]      Craig, H. (1961), Isotopic variations in meteoric waters, Science, 133, 1702-1703, doi: 10.1126/science.133.3465.1702.

[125]      Craig, H., 1961. Isotopic variations in meteoric waters. Science 133, 1702-1703.

[126]      Craig, H.,Gordon, L. I., Deuterium and oxygen 18 variations in the ocean and the marine atmosphere. 1965: Consiglio nazionale delle richerche, Laboratorio de geologia nucleare.

[127]      Curtis JT and McIntosh RP. 1951. An upland forest continuum in the prairie-forest border region of Wisconsin. Ecology 32(3): 476-496.

[128]      Dams, J., Woldeamlak, S.T., Batelaan, O., 2008. Predicting land-use change and its impact on the groundwater system of the Kleine Nete catchment, Belgium. Hydrol. Earth Syst. Sci. 12, 1369-1385.

[129]      Dansgaard W. (1964) Stable isotope in precipitation. Tellus 16,436-468

[130]      Dansgaard W. 1964. Stable isotope in precipitation. Tellus 16: 436-468.

[131]      Dansgaard, W., 1964. Stable isotope in precipitation. Tellus 16, 436-468.

[132]      de Vries JJ and Simmers I (2002) Groundwater recharge: An overview of processes and challenges. Hydrogeol J 10:5-17

[133]      de Vries JJ and Simmers I. 2002. Groundwater recharge: An overview of processes and challenges. Hydrogeol J 10:5-17.

[134]      DeFries R and Eshleman KN. 2004. Land-use change and hydrologic processes: a major focus for the future. Hydrological Processes. 18: 2183-2186.

[135]      DeFries, R., and K. N. Eshleman (2004), Land-use change and hydrologic processes: a major focus for the future, Hydrol. Process., 18, 2183-2186, doi: 10.1002/hyp.5584.

[136]      Deng MJ. 2007. Study on ecological water delivery to the lower reaches of the Tarim River and its response of vegetation restoration. Doctoral Thesis. Hohai University, Nanjing, China, pp180.

[137]      Deng MJ. 2007. Study on ecological water delivery to the lower reaches of the Tarim River and its response of vegetation restoration. Doctoral Thesis. Hohai University, Nanjing, China, pp180.

[138]      Deng, M., 2009. Theory and practice of water management in the Tarim River, China. Science Press, Beijing, 564pp.

[139]      Dewar, W.A. and McDonald, P., 1961. Determination of dry matter in silage by distillation with toluene. J. Sci. Food Agric., 12: 790-795.

[140]      Dincer, T., The use of oxygen 18 and deuterium concentrations in the water balance of lakes. Water Resources Research, 1968. 4(6): p. 1289-1306.

[141]      Divine CE and McDonnell JJ. 2005. The future of applied tracers in hydrogeology. Hydrogeology Journal 13: 255-258.

[142]      Divine CE and McDonnell JJ. 2005. The future of applied tracers in hydrogeology. Hydrogeology Journal 13: 255-25.

[143]      Domagalski J, Xinquan Z, Chao L, Deguo Z, Chi FL, Kaitai X, Ying L,. Yang L, Shide L Dewen L (2001) Comparative water-quality assessment of the Hai He River basin in the People's Republic of China and three similar basins in the United States. US Dept. of the Interior Reston, Va.; US Geological Survey, Washington, DC

[144]      Domagalski, J.L., Phillips, S.P., Bayless, E.R., Zamora, C., Kendall, C., Wildman Jr., R.A., Hering, J.G., 2008. Influences of the unsaturated, saturated, and riparian zones on the transport of nitrate near the Merced River, California, USA. Hydrogeol. J. 16 (4), 675–690.

[145]      Dong X, Deng M. Xinjiang groundwater resources. Urumqi, Xinjiang Science and Technique Press. 2005,pp193

[146]      Dong, X., Deng, M., 2005. Xinjiang groundwater resources. Xinjiang Science and Technique Press, Urumqi, China, 193pp.

[147]      Duan Z, Pang Z, Wang X 2011Sustainability evaluation of limestone geothermal reservoirs with extended production histories in Beijing and Tianjin, China. Geothermics, in press.

[148]      Eamus D, Froend R, Loomes R, Hose G, Murray B (2006) A functional methodology for determining the groundwater regime needed to maintain the health of groundwater-dependent vegetation. Australian Journal of Botany, 54: 97-114.

[149]      Eamus, D., Froend, R., Loomes, R., Hose, G., Murray, B., 2006. A functional methodology for determining the groundwater regime needed to maintain the health of groundwater-dependent vegetation. Australian Journal of Botany 54, 97-114.

[150]      EANET-Acid Deposition Monitoring Network in East Asia (2009) EANET data on the acid deposition in the East Asian region. http://www.eanet.cc. Cited 25 December 2009

[151]      EANET-Acid Deposition Monitoring Network in East Asia (2009), EANET data on the acid deposition in the East Asian region, http://www.eanet.cc, [Accessed Dec 2009].

[152]      EANET-Acid Deposition Monitoring Network in East Asia, 2008. EANET data on the acid deposition in the East Asian region. http://www.eanet.cc. [Accessed Dec 2008].

[153]      EANET-Acid Deposition Monitoring Network in East Asia, 2008. EANET data on the acid deposition in the East Asian region. http://www.eanet.cc. [Accessed Dec 2008].

[154]      EANET-Acid Deposition Monitoring Network in East Asia., 2008. EANET data on the acid deposition in the East Asian region. http://www.eanet.cc. [Accessed Dec 2008]

[155]      Eckhardt, DAV, Stackelberg PE (1995) Relation of ground-water quality to landuse on Long Island, New York. Groundwater 33:1019–1033

[156]      Edmunds WM, Darling WG, Kinniburgh DG (1988) Solute profile techniques for recharge estimation in semi-arid and arid terrain. In: Simmers I (ed.) Estimation of Natural Groundwater Recharge, Reidel, Dordrecht, pp 139-157

[157]      Edmunds WM, Gaye CB (1994) Estimating the spatial variability of groundwater recharge in the Sahel using chloride. J Hydrol 156:47-59

[158]      Edmunds WM, Gaye CB. 1994. Estimating the spatial variability of groundwater recharge in the Sahel using chloride. J Hydrol 156:47-59.

[159]      Edmunds WM, Tyler SW (2002) Unsaturated zones as archives of past climates: Toward a new proxy for continental regions. Hydrogeol J 10:216-228

[160]      Edmunds, W. M., and S. W. Tyler (2002), Unsaturated zones as archives of past climates: toward a new proxy for continental regions, Hydrogeol. J., 10, 216-228, doi: 10.1007/s10040-001-0180-6.

[161]      Edmunds, W. M., Darling, W. G. & Kinniburgh, D. G. 1988. Solute profile techniques for recharge estimation in semi-arid and arid terrain. In: Simmers, I. (ed.) Estimation of Natural Groundwater Recharge, Reidel, Dordrecht, 139–157.

[162]      Edmunds, W. M., J. Z. Ma, W. Aeschbach-Hertig, R. Kipfer, and D. P. F. Darbyshire (2006), Groundwater recharge history and hydrogeochemical evolution in the Minqin Basin, North West China, Appl. Geochem., 21, 2148-2170, doi:10.1016/j.apgeochem.2006.07.016.

[163]      Edmunds, W. M., W. G. Darling, and D. G. Kinniburgh (1988), Solute profile techniques for recharge estimation in semi-arid and arid terrain, in Estimation of natural groundwater recharge, edited by I. Simmers, pp. 139-157, Reidel, Dordrecht.

[164]      Edmunds, W.M. and Walton, N.R.G., 1980. A geochemical and isotopic approach to recharge evaluation in semi-arid zones - past and present. In: Arid Zone Hydrology: Investigations with Isotope Techniques, IAEA, Vienna, pp. 47–68.

[165]      Edmunds, W.M., 2007. Conceptual models for recharge sequences in arid and semi-arid regions using isotopic and geochemical methods. UNESCO and G-WADI Regional Workshop, 10th to 16th June, 2007. Lanzhou, China.

[166]      Edmunds, W.M., 2009. Geochemistry’s vital contribution to solving water resource problems. Applied Geochemistry 24, 1058-1073.

[167]      Edmunds, W.M., Darling, W.G., Kinniburgh, D.G., 1988. Solute profile techniques for recharge estimation in semi-arid and arid terrain. In: Simmers, I. (ed.) Estimation of Natural Groundwater Recharge, Reidel, Dordrecht, 139-157.

[168]      Edmunds, W.M., Ma, J.Z., Aeschbach-Hertig, W., Kipfer, R., Darbyshire, D.P.F., 2006. Groundwater recharge history and hydrogeochemical evolution in the Minqin Basin, North West China. Appl. Geochem. 21, 2148-2170.

[169]      Edmunds, W.M., Ma, J.Z., Aeschbach-Hertig, W., Kipfer, R., Darbyshire, D.P.F., 2006. Groundwater recharge history and hydrogeochemical evolution in the Minqin Basin, North West China. Appl. Geochem. 21, 2148-2170.

[170]      Edmunds, W.M., Tyler, S.W., 2002. Unsaturated zones as archives of past climates: toward a new proxy for continental regions. Hydrogeol. J. 10, 216-228.

[171]      Edmunds, W.M., Tyler, S.W., 2002. Unsaturated zones as archives of past climates: toward a new proxy for continental regions. Hydrogeol. J. 10, 216-228.

[172]      Edmunds, W.M., Wright, E.P. 1979. Groundwater recharge and palaeoclimate in the Sirte and Kufra basins, Libya. J. Hydrol. 40, 215–241.

[173]      El Etreiby, F., and H. Laudelout (1988), Movement of nitrite through a loess soil, J. Hydrol., 97, 213-224, doi: 10.1016/0022-1694(88)90116-3.

[174]      Eriksson, E. and Khunakasem, V. 1969. Chloride concentration in groundwater, recharge rate and rate of deposition of chloride in the Israel Coastal Plain. Journal of Hydrology, 7: 178-197.

[175]      Etreiby FE, Laudelout H, 1988, Movement of nitrite through a loess soil. Journal of Hydrology 97: 213-224.

[176]      Fan Z, Ma Y, Zhang H, Du L. 2002. Salinization and improvement ways of water quality of Tarim River, Xinjiang, China. Advances in Water Science 13(6): 719-725.

[177]      Fan Z, Ma Y, Zhang H, Du L. 2002. Salinization and improvement ways of water quality of Tarim River, Xinjiang, China. Advances in Water Science 13(6): 719-725.

[178]      Fan, Z., Ma, Y., Zhang, H., Du, L., 2002. Salinization and improvement ways of water quality of Tarim River, Xinjiang, China. Advances in Water Science 13(6), 719-725.

[179]      Favreau G, Cappelaere B, Massuel S, Leblanc M, Boucher M, Boulain N, Leduc C (2009) Land clearing, climate variability, and water resources increase in semiarid southwest Niger: A review. Water Resour Res 45, W00A16, doi:10.1029/2007WR006785

[180]      Favreau G., Leduc C, Marlin C, Dray M, Taupin J-D, Massault M, Salle CLGL, Babic M (2002) Estimate of recharge of a rising water table in semiarid Niger from 3H and 14C modeling. Ground Water 40:144-151

[181]      Favreau, G., B. Cappelaere, S. Massuel, M. Leblanc, M. Boucher, N. Boulain, and C. Leduc (2009), Land clearing, climate variability, and water resources increase in semiarid southwest Niger: A review, Water Resour. Res., 45, W00A16, doi:10.1029/2007WR006785.

[182]      Favreau, G., C. Leduc, C. Marlin, M. Dray, J. D. Taupin, M. Massault, C. L. La Salle, and M. Babic (2002), Estimate of recharge of a rising water table in semiarid Niger from 3H and 14C modeling, Ground Water, 40, 144-151, doi: 10.1111/j.1745-6584.2002.tb02499.x.

[183]      Favreau, G., Cappelaere, B., Massuel, S., Leblanc, M., Boucher, M., Boulain, N., Leduc, C., 2009. Land clearing, climate variability, and water resources increase in semiarid southwest Niger: A review. Water Resour. Res. 45, W00A16, doi:10.1029/2007WR006785.

[184]      Favreau, G., Cappelaere, B., Massuel, S., Leblanc, M., Boucher, M., Boulain, N., Leduc, C., 2009. Land clearing, climate variability, and water resources increase in semiarid southwest Niger: A review. Water Resour. Res. 45, W00A16, doi:10.1029/2007WR006785.

[185]      Favreau,G., C. Leduc, C.Marlin,M. Dray, J. D. Taupin,M.Massault, C. L. La Salle, and M. Babic. 2002. Estimate of recharge of a rising water table in semiarid Niger from H-3 and C-14 modeling. Ground Water, 40: 144-151.

[186]      Feng Q, Liu W, Si J, Su Y, Zhang Y, Cang Z, Xi H. 2005. Environmental effects of water resource development and use in the Tarim River basin of northwestern China. Environmental Geology 48: 202-210.

[187]      Feng Q, Liu W, Si J, Su Y, Zhang Y, Cang Z, Xi H. 2005. Environmental effects of water resource development and use in the Tarim River basin of northwestern China, Environmental Geology 48: 202-210.

[188]      Feng, Q., Liu, W., Si, J., Su, Y., Zhang, Y., Cang, Z., Xi, H., 2005. Environmental effects of water resources development and use in the Tarim River basin of northwestern China. Environmental Geology 48, 202-210.

[189]     Feng, Q., Liu, W., Su, Y.H., Zhang, Y.W., Si, J.H., 2004. Distribution and evolution of water chemistry in Heihe River basin. Environ. Geol. 45, 947-956.

[190]      Feng, Q., W. Liu, Y. H. Su, Y. W. Zhang, and J. H. Si (2004), Distribution and evolution of water chemistry in Heihe River basin, Environ. Geol., 45, 947-956, doi: 10.1007/s00254-003-0950-7.

[191]      Finch JW (2001) Estimating change in direct groundwater recharge using a spatially distributed soil water balance model. Q J Eng Geol Hydroge 34:71-83

[192]      Finch, J. W. 2000. Modelling the soil moisture deficits developed under grass and deciduous woodland: The implications for water resources, J. Chart. Inst. Water Environ. Manage., 14, 371–376

[193]      Fisher RS and Mullican WF. (1997) Hydrochemical evolution of sodium-sulfate and sodium-chloride groundwater beneath the Northern Chihuahuan Desert, Trans-Pecos, Texas, USA. Hydrogeology J. v.5, no. 2: 4-16.

[194]      Fisher RS, Mullican WF. 1997. Hydrochemical evolution of sodium-sulfate and sodium-chloride groundwater beneath the Northern Chihuahuan Desert, Trans-Pecos, Texas, USA. Hydrogeology Journal 5(2): 4-16.

[195]      Fleckenstein JH, Krause S, Hannah DM, Boano F. 2011. Groundwater-surface water interactions: New methods and models to improve understanding of processes and dynamics. Advances in Water Resources 33: 1291-1295.

[196]      Foerstel H. 1982. 18O/16O ratio of water in plants and in their environment. In: Stable Isotopes. H.L. Schmidt, H. Foerstel and K. Heinzinger (eds). Elsevier, Amsterdam, 503-516.

[197]      Foster SSD, Morris BL, Lawrence AR (1994) Effects of urbanization on groundwater recharge. In: Proc ICE Int Conf on Groundwater Problems in Urban Areas, London, pp 43-63

[198]      Fritz P, Fontes J-Ch. 1986. Handbook of Environmental Isotope Geochemistry, vol. 2, The Terrestrial Environment, B. Elsevier, Amsterdam, The Netherlands, pp 557.

[199]      Froehlich, K., Evaluating the water balance of inland seas using isotopic tracers: the Caspian Sea experience. Hydrological Processes, 2000. 14(8): p. 1371-1383.

[200]      Froehlich, K., Kralik, M., Papesch, W., Rank, D., Scheifinger, H. and Stichler, W. 2008. Deuterium excess in precipitation of Alpine regions - moisture recycling. Isot. Environ. Healt. S., 44(1), 61-70.

[201]      Froehlich, K., Kralik, M., Papesch, W., Rank, D., Scheifinger, H. and Stichler, W. 2008. Deuterium excess in precipitation of Alpine regions - moisture recycling. Isot. Environ. Healt. S., 44(1), 61-70.

[202]      Garcia MG, Del Hidalgo M, Blesa MA. (2001) Geochemistry of groundwater in alluvial plain of Tucuman Province, Argentia, J Hydrology. 9: 597-610.

[203]      Gat, J. R., 5 Stable Isotopes of Fresh and Saline Lakes. Physics and chemistry of lakes, 1995: p. 139.

[204]      Gat, J. R., Mook, W. G. and Meijer, H. A. J. 2001. Stable isotopes processes in the water cycle. In: Environmental isotopes in the hydrological cycle (Principles and applications), Atmospheric water, edited by W.G. Mook, pp. 17-40, UNESCO and IAEA, Paris.

[205]      Gat, J. R.,Bowser, C., The heavy isotope enrichment of water in coupled evaporative systems. Stable Isotope Geochemistry: a Tribute to Samuel Epstein, 1991: p. 159–168.

[206]      Gat, J. R.,Levy, Y., Isotope hydrology of inland sabkhas in the Bardawil area, Sinai. Limnology and Oceanography, 1978. 23(5): p. 841-850.

[207]      Gates JB, Edmunds WM, Ma J, Scanlon BR (2008) Estimating groundwater recharge in a cold desert environment in northern China using chloride. Hydrogeol J 16:893-910

[208]      Gates JB, Edmunds WM, Ma JZ, Scanlon BR. 2008. Estimating groundwater recharge in a cold desert environment in northern China using chloride. Hydrogeology Journal 16: 893-910.

[209]      Gates JB, Edmunds WM, Ma JZ, Scanlon BR. 2008. Estimating groundwater recharge in a cold desert environment in northern China using chloride. Hydrogeology Journal doi: 10.1007/s10040-007-0264-z.

[210]      Gates JB. 2007. Groundwater recharge and paleaohydrology of the Badain Jaran Desert, Northwest China. Doctor Thesis, University of Oxford.

[211]       Gates, J. B., B. R. Scanlon, X. Mu, and L. Zhang (in press), Impacts of soil conservation on groundwater recharge in the semi-arid Loess Plateau, China, Hydrogeol. J.

[212]      Gates, J. B., W. M. Edmunds, J. Z. Ma, and B. R. Scanlon (2008), Estimating groundwater recharge in a cold desert environment in northern China using chloride, Hydrogeol. J., 16, 893-910, doi: 10.1007/s10040-007-0264-z.

[213]      Gates, J.B., Edmunds, W.M., Ma, J., Scanlon, B.R., 2008. Estimating groundwater recharge in a cold desert environment in northern China using chloride. Hydrogeology Journal 16, 893-910.

[214]      Gates, J.B., Edmunds, W.M., Ma, J.Z., Scanlon, B.R., 2008. Estimating groundwater recharge in a cold desert environment in northern China using chloride. Hydrogeol. J. 16, 893-910.

[215]      Gates, J.B., Edmunds, W.M., Ma, J.Z., Scanlon, B.R., 2008a. Estimating groundwater recharge in a cold desert environment in northern China using chloride. Hydrogeol. J. 16, 893-910.

[216]      Gates, J.B., Scanlon, B.R., Mu, X.M., 2008b. Impacts of soil conservation measures on vadose zone drainage in the Loess Plateau, China. Geological Society of America, Abstracts with Programs, abstract 62-14.

[217]      Gaye, C.B., Edmunds, W.M. 1996. Intercomparison between physical, geochemical and isotopic methods for estimating groundwater recharge in northwestern Senegal. Environmental Geology, 27: 246-251.

[218]      Gee GW, Hillel D (1988) Groundwater recharge in arid regions: review and critique of estimation methods. Hydrol Process 2:255-266

[219]      Gee GW, Wierenga PJ, Andraski BJ, Young MH, Fayer MJ, Rockhold ML. 1993. Variations in water balance and recharge potential at three western desert sites. Soil Sci. Soc. Am. J. 58: 63-72.

[220]      Gee, G. W., and D. Hillel (1988), Groundwater recharge in arid regions: Review and critique of estimation methods, Hydrol. Process., 2, 255-266, doi: 10.1002/hyp.3360020306.

[221]      Gee, G.W., Hillel, D., 1988. Groundwater recharge in arid regions: Review and critique of estimation methods. Hydrol. Process. 2, 255-266.

[222]      Gee, G.W., Hillel, D., 1988. Groundwater recharge in arid regions: Review and critique of estimation methods. Hydrol. Process. 2, 255-266.

[223]      Ghaffari, G., Keesstra, S., Ghodousi, J., Ahmadi, H., 2010. SWAT-simulated hydrological impact of land-use change in the Zanjanrood basin, Northwest Iran. Hydrol. Process. 24, 892-903.

[224]      Gibbs RJ (1970) Mechanisms Controlling World Water Chemistry, 170, 1088 – 1090.

[225]      Gibbs RJ. 1970. Mechanisms Controlling World Water Chemistry. Science 170: 1088-1090.

[226]      Gibson, J. J., A new conceptual model for predicting isotopic enrichment of lakes in seasonal climates. Pages News, 2002. 10(2): p. 10-11.

[227]      Gibson, J. J., Edwards, T. W. D., Bursey, G. G.,Prowse, T. D., Estimating Evaporation Using Stable Isotopes: Quantitative Results and Sensitivity Analysis for. Nordic Hydrology, 1993. 24: p. 79-94.

[228]      Gibson, J. J., Prepas, E. E.,McEachern, P., Quantitative comparison of lake throughflow, residency, and catchment runoff using stable isotopes: modelling and results from a regional survey of Boreal lakes. Journal of Hydrology, 2002. 262(1-4): p. 128-144.

[229]      Gibson, J. J.,Edwards, T. W. D., Regional water balance trends and evaporation-transpiration partitioning from a stable isotope survey of lakes in northern Canada. Global Biogeochemical Cycles, 2002. 16(2): p. 1026.

[230]      Ginn, T. R., and E. M. Murphy (1997), A transient flux model for convection infiltration: forward and inverse solution for chloride mass balance studies, Water Resour. Res., 33, 2065-2079, doi:10.1029/97WR01618.

[231]      Glynn PD, Plummer LN. 2005. Geochemistry and the understanding of ground-water systems. Hydrogeology Journal 13:263-287.

[232]      Glynn PD, Plummer LN. 2005. Geochemistry and the understanding of ground-water systems. Hydrogeol J 13:263-287.

[233]      Glynn PD, Plummer LN. 2005. Geochemistry and the understanding of ground-water systems. Hydrogeology Journal 13:263-287.

[234]      Gonfiantini R. (1986) Environmental isotopes in lake studies. In: P Fritz and J-Ch Fontes (eds) Handbook of Environmental Isotope Geochemistry. Vol. 2, The Terrestrial Environmental. Elsevier, Amsterdam, Netherlands: 113-168.

[235]      Gonfiantini, R., 1986. Environmental isotopes in lake studies. In: Handbook of Environmental Isotope Geochemistry 2. P., Fritz, J.Ch., Fontes (eds). Elsevier, Amsterdam, 113-168.

[236]      Gonfiantini, R., Environmental isotopes in lake studies= isotopes de l'environnement pour l'étude des lacs. Handbook of environmental isotope geochemistry, 1986. 2: p. 113-168.

[237]      Goni IB, Fellman E, Edmunds WM (2001) Rainfall geochemistry in the Sahel region of northern Nigeria. Atmos Environ 35:4331-4339

[238]      Goni, I. B., E. Fellman, and W. M. Edmunds (2001), Rainfall geochemistry in the Sahel region of northern Nigeria, Atmos. Environ., 35, 4331-4339, doi:10.1016/S1352-2310(01)00099-1.

[239]      Goni, I.B., Fellman, E., Edmunds, W.M., 2001. Rainfall geochemistry in the Sahel region of northern Nigeria. Atmospheric Environment 35, 4331-4339.

[240]      Goni, I.B., Fellman, E., Edmunds, W.M., 2001. Rainfall geochemistry in the Sahel region of northern Nigeria. Atmos. Environ. 35, 4331-4339.

[241]      Goni, I.B., Fellman, E., Edmunds, W.M., 2001. Rainfall geochemistry in the Sahel region of northern Nigeria. Atmos. Environ. 35, 4331-4339.

[242]      Gremmen NJM, Reijnen MJSM, Wiertz J and van Wirdum G (1990) A model to predict and assess the effects of groundwater withdrawal on the vegetation in the Pleistocene areas of The Netherlands. Journal of Environmental Management, 31(2): 143-155.

[243]      Gremmen, N.J.M., Reijnen, M.J.S.M., Wiertz, J., van Wirdum, G., 1990. A model to predict and assess the effects of groundwater withdrawal on the vegetation in the Pleistocene areas of The Netherlands. Journal of Environmental Management 31(2), 143-155.

[244]      Groundwater information of Groundwater (2010) http://www.cigem.gov.cn /dxs /He bei.htm

[245]      Guan B. 1986. The extrapolation of tritium in the precipitation of China. Hydrogeology and Engineering Geology (4): 38-42.

[246]      Guan B. 1986. The extrapolation of tritium in the precipitation of China. Hydrogeology and Engineering Geology (4): 38-42.

[247]      Gvirtzman H, Margaritz. 1986. Investigation of water movement in the unsaturated zone under an irrigated area using environmental tritium. Water Reour. Res. 22: 635-642.

[248]      Han L, Pang Z, Groening M (2001) Study of groundwater mixing using CFC data. Sciences in China, 44 (S): 21-28.

[249]      Hao A, Li W, Liang Z. Using TDS and δ18O to determine lixiviation and evaporation contribution to groundwater salinity in inland arid region. Hydrogeology and engineering geology, 2000, (1): 4-6.

[250]      Hao X, Li W, Huang X, Zhu C. Appropriate ecological groundwater depth of the desert riverbank forest vegetation along the middle and lower reaches of the Tarim River, China. Hydrological Processes, this issue.

[251]      Hao, X., Li, W., Huang, X., Zhu, C., Ma, J., 2010. Assessment of the groundwater threshold of desert riparian forest vegetation along the middle and lower reaches of the Tarim River, China. Hydrological Processes 24, 178-186.

[252]      Harter, T., Y. S. Onsoy, K. Heeren, M. Denton, G. Weissmann, J. W. Hopmans, and W. R. Horwath (2005), Deep vadose zone hydrology demonstrates fate of nitrate in eastern San Joaquin Valley, Calif. Agr., 59(2), 124-132, doi: 10.3733/ca.v059n02p124.

[253]      He X, Shao D, Liu W, Dai T. 2006. Review of the researches on utilization of farmland drainage as resources, Transactions of the CSAE, 22(3): 176-179

[254]      He, X., Shao, D., Liu, W., Dai, T., 2006. Review of the researches on utilization of farmland drainage as resources. Transactions of the CSAE 22 (3), 176-179.

[255]      Healy, R. W., and P. G. Cook (2002), Using groundwater levels to estimate recharge, Hydrogeol. J., 10, 91-109, doi: 10.1007/s10040-001-0178-0.

[256]      Heller, F. and Liu, T. 1982. Magnetostratigraphical dating of loess deposits in China. Nature 300, 431 - 433

[257]      Hendry, M.J., 1983. Groundwater recharge through a heavy-textured soil. J. Hydrol., 63: 201-209.

[258]      Herczeg, A. L., Dogramaci, S. S., Leaney, F. W., 2001. Origin of dissolved salts in a large, semi-arid groundwater system: Murray Basin, Australia. Mar. Freshwater Res. 52, 41-52.

[259]      Herczeg, A. L., Dogramaci, S. S., Leaney, F. W., 2001. Origin of dissolved salts in a large, semi-arid groundwater system: Murray Basin, Australia. Mar. Freshwater Res. 52, 41-52.

[260]      Herczeg, A. L., Leaney, F. W. (in press) Review: Environmental tracers in arid-zone hydrology. Hydrogeology Journal. Doi: 10.1007/s10040-010-0652-7.

[261]      Herczeg, A.L. and Edmunds, W.M. 2000. Inorganic ions as tracers. In: Environmental Tracers in Subsurface Hydrology P.G. Cook & A.L. Herczeg (eds). Kluwer, Boston. 31-77.

[262]      Herczeg, A.L. and Edmunds, W.M. 2000. Inorganic ions as tracers. In: Environmental Tracers in Subsurface Hydrology P.G. Cook & A.L. Herczeg (eds). Kluwer, Boston: 31-77.

[263]      Horita, J. and Gat, J.R., 1988. Procedure for the hydrogen isotope analysis of water from concentrated brines. Chem. Geol. (Isotope Geosci. Section), 72: 85-88.

[264]      Hou GC, Zhang MS (2004) Groundwater resources and their sustainable utilization in the Ordos Basin. Shaanxi Science and Technology Press, Xi'an, Shaanxi, China, 467 pp (in Chinese)

[265]      Hou P, Beeton RJ, Carter S, Dong X, Li X. 2007a. Response to environmental flows in the lower Tarim River, Xinjiang, China: Ground water. Journal of Environmental Management 83: 371-382.

[266]      Hou P, Beeton RJ, Carter S, Dong X, Li X. 2007a. Response to environmental flows in the lower Tarim River, Xinjiang, China: Ground water. Journal of Environmental Management 83: 371-382.

[267]      Hou P, Beeton RJ, Carter S, Dong X, Li X. 2007b. Response to environmental flows in the Lower Tarim River, Xinjiang, China: An ecological interpretation of water-table dynamics. Journal of Environmental Management 83: 383-391.

[268]      Hou P, Beeton RJ, Carter S, Dong X, Li X. 2007b. Response to environmental flows in the Lower Tarim River, Xinjiang, China: An ecological interpretation of water-table dynamics. Journal of Environmental Management 83: 383-391.

[269]      Hou, P., Beeton, R.J., Carter, S., Dong, X., Li, X., 2007a. Response to environmental flows in the lower Tarim River, Xinjiang, China: Ground water. Journal of Environmental Management 83, 371-382.

[270]      Hou, P., Beeton, R.J., Carter, S., Dong, X., Li, X., 2007b. Response to environmental flows in the Lower Tarim River, Xinjiang, China: An ecological interpretation of water-table dynamics. Journal of Environmental Management 83, 383-391.

[271]      Hu CS, Chen YS, Gao L, Li YD (2001) On the nitrate-N accumulated charcateristics in deep soil layer of winter wheat field in Taihang Piedmont. Chinese Journal of Eco-Agriculture 9(1): 19-20

[272]      Hu R, Wang D, Feng G, Wang Y, Wang S, Zhang X. 2004. Avoidance of the River Channel Dried-up Tragedy in the Lower Reaches of the Tarim River to Occur in Its Middle Reaches. Arid Zone Research 21 (3): 199-203.

[273]      Hu R, Wang D, Feng G, Wang Y, Wang S, Zhang X. 2004. Avoidance of the River Channel Dried-up Tragedy in the Lower Reaches of the Tarim River to Occur in Its Middle Reaches. Arid Zone Research 21 (3): 199-203.

[274]      Huang MB, Gallichand J (2006) Use of the SHAW model to assess soil water recovery after apple trees in the gully region of the Loess Plateau, China. Agr Water Manage 85:67-76

[275]      Huang T, Pang Z (2010) Changes in Groundwater Induced by Water Diversion in the Lower Tarim River, Xinjiang Uygur, NW China: Evidence from Environmental Isotopes and Water Chemistry. Journal of Hydrology 387: 188-201.

[276]      Huang T, Pang Z (2011) Estimating groundwater recharge following land-use change using chloride mass balance of soil profiles: A case study at Guyuan and Xifeng in the Loess Plateau of China. Hydrogeology Journal, 19: 177-186.

[277]      Huang T, Pang Z (in press) Estimating groundwater recharge following land-use change using chloride mass balance of soil profiles: a case study at Guyuan and Xifeng in the Loess Plateau of China. Hydrogeology Journal, Doi: 10.1007/s10040-010-0643-8.

 

[278]      Huang, M. B., and L. Zhang (2004), Hydrological responses to conservation practices in a catchment of the Loess Plateau, China, Hydrol. Process., 18, 1885-1898, doi: 10.1002/hyp.1454.

[279]      Huang, M.B. and Zhang, L. 2004. Hydrological responses to conservation practices in a catchment of the Loess Plateau, China. Hydrological Processes, 18: 1885-1898.

[280]      Huang, M.B., Gallichand, J., 2006. Use of the SHAW model to assess soil water recovery after apple trees in the gully region of the Loess Plateau, China. Agr. Water Manage. 85, 67-76.

[281]      Huang, M.B., Gallichand, J., 2006. Use of the SHAW model to assess soil water recovery after apple trees in the gully region of the Loess Plateau, China. Agr. Water Manage. 85, 67-76.

[282]      Huang, M.B., Yang, X.M., Li, Y.S., 2001. Effect on regional water cycle of apple base in Weibei Upland of the Loess Plateau (in Chinese). Acta Geogr. Sin. 56, 7-13.

[283]      Huang, T. M., and Z. H. Pang (2011), Estimating groundwater recharge following land-use change using chloride mass balance of soil profiles: A case study at Guyuan and Xifeng in the Loess Plateau of China, Hydrogeol. J., 19, 177-186, doi: 10.1007/s10040-010-0643-8.

[284]      IAEA (2009), Water Isotope System for Data Analysis, Visualization, and Electronic Retrieval (WISER), http://nds121.iaea.org/wiser/ [Accessed Dec 2009]

[285]      IAEA and WMO. 2006. Global Network of Isotopes in Precipitation. The GNIP Database. Accessible at: http://isohis.iaea.org.

[286]      IAEA and WMO. 2006. Global Network of Isotopes in Precipitation. The GNIP Database. Accessible at: http://isohis.iaea.org.

[287]      IAEA and WMO. 2006. Global Network of Isotopes in Precipitation. The GNIP Database. Accessible at: http://isohis.iaea.org.

[288]      IAEA, 2001. Isotope Based Assessment of Groundwater Renewal in Water Scarce Regions, IAEA Tecdoc-1246, Y. Yurtsever (ed.). IAEA, Vienna, 273pp.

[289]      IAEA, 2001. Isotope Based Assessment of Groundwater Renewal in Water Scarce Regions, IAEA Tecdoc-1246, Y. Yurtsever (ed.). IAEA, Vienna, 273pp.

[290]      IHEG-Institute of Hydrogeology and Engineering Geology, 1979. Hydrogeological Atlas of the P. R. China. Cartographic Publishing House, Beijing.

[291]      Jiao P, Wang E, Liu C. 2004. Characteristics and origin of tritium in the potassium2rich brine in Lop Nur, Xinjiang. Nuclear Techniques 27 (9): 710-715.

[292]      Jiao P, Wang E, Liu C. 2004. Characteristics and origin of tritium in the potassium2rich brine in Lop Nur, Xinjiang. Nuclear Techniques 27 (9): 710-715.

[293]      Jiao, P., Wang, E., Liu, C., 2004. Characteristics and origin of tritium in the potassium-rich brine in Lop Nur, Xinjiang. Nuclear Techniques 27 (9), 710-715.

[294]      Jin L. Edmunds WM. 2010. A New Immiscible Displacing Fluid for Extracting Interstitial Water from Unsaturated Sediments and Soils. Vadose Zone J. 9:1–7

[295]      Jin M, Liang X, Simmers I, Gao Y, Zhang R. 2000. Estimation of Groundwater Recharge Using Artificial Tritium Tracing. China Environmental Science Press: Wuhan; 340–345.

[296]      Jobbágy, E. G., and R. B. Jackson (2004), Groundwater use and salinization with grassland afforestation, Global Change Biol., 10, 1299-1312, doi:10.1111/j.1365-2486.2004.00806.x.

[297]      Jobbágy, E.G., Jackson, R.B., 2004. Groundwater use and salinization with grassland afforestation. Global Change Biol. 10, 1299-1312.

[298]      Jolly ID, Cook PG, Allison GB, Hughes MW (1989) Simultaneous water and solute movement through an unsaturated soil following an increase in recharge. J Hydrol 111:391-396

[299]      Jolly, I. D., P. G. Cook, G. B. Allison, and M. W. Hughes (1989), Simultaneous water and solute movement through an unsaturated soil following an increase in recharge, J. Hydrol., 111, 391-396, doi:10.1016/0022-1694(89)90270-9.

[300]      Jolly, I. D., P. G. Cook, G. B. Allison, and M. W. Hughes. 1989. Simultaneous water and solute movement through an unsaturated soil following an increase in recharge, J. Hydrol., 111, 391-396.

[301]      Jones KR. Arid zone hydrology (Chinese version), Agricultural Scientech Press, Beijing. 1988, 197-198.

[302]      Jusserand, C., 1980. Extraction de l'eau interstitielle des sediments et des sols. Catena, 7:87-96.

[303]      Kemper KE (2004) Groundwater from development to management. Hydrogeol J 12:3-5

[304]      Kemper, K.E. 2004. Groundwater-from development to management. Hydrogeology Journal 12:3-5.

[305]      Kim, K.,Lee, X., Isotopic enrichment of liquid water during evaporation from water surfaces. Journal of Hydrology.

[306]      Kinniburgh DG, Miles DL. 1983. Extraction and Chemical Analysis of Interstitial Water from Soils and Rocks. 17: 362-368

[307]      Kinzelbach W., Aeschbach W., Alberich C., et al. 2002. A Survey of Methods for Groundwater Recharge in Arid and Semi-arid regions. Early Warning and Assessment Report Series, UNEP/DEWA/RS.02-2. United Nations Environment Programme, Nairobi, Kenya. ISBN 92-80702131-3.

[308]      Kinzelbach, W. (2002), The Most Common Methods of Recharge Estimation, in A Survey of Methods for Groundwater Recharge in Arid and Semi-arid regions. Early Warning and Assessment Report Series, UNEP/DEWA/RS.02-2., edited by W. Kinzelbach et al., pp. 7-19, United Nations Environment Programme, Nairobi, Kenya, ISBN 92-80702131-3.

[309]     Kinzelbach, W., Bauer, P., Siegfried, T. 2003. Sustainable groundwater management-problems and scientific tools. Episodes, 26(4): 39-44.

[310]      Klein Goldewijk, K. (2001), Estimating global land use change over the past 300 years: The HYDE database, Global Biogeochem. Cycles, 15(2), 417-433, doi:10.1029/1999GB001232.

[311]       Klein Goldewijk, K. (2001), Estimating global land use change over the past 300 years: The HYDE database. Global Biogeochem. Cycles 15: 417-433.

[312]      Klein LR, Clayton SR, Alldredge JR and Goodwin P (2007) Long-Term Monitoring and Evaluation of the Lower Red River Meadow Restoration Project, Idaho, U.S.A. Restoration Ecology, 15(2): 223-239.

[313]      Klein, L.R., Clayton, S.R., Alldredge, J.R., Goodwin, P., 2007. Long-Term Monitoring and Evaluation of the Lower Red River Meadow Restoration Project, Idaho, U.S.A. Restoration Ecology 15(2), 223-239.

[314]      Knowlton, R.G. Jr., F.M. Phillips and A.R. Campbell. 1989. A stable-isotope investigation of vapor transport during ground-water recharge in New Mexico. In: New Mexico Water Resource Research Institute. Report No. 237 (1989) Las Cruces, NM .pp88.

[315]      Kong Y, Pang Z (2011) Isotope hydrograph separation in alpine catchments: a review. Sciences in Cold and Arid Regions, 3: 86–91.

[316]      Krabbenhoft, D. P., Bowser, C. J., Anderson, M. P.,Valley, J. W., Estimating groundwater exchange with lakes: 1. The stable isotope mass balance method. Water Resources Research, 1990. 26(10): p. 2445-2453.

[317]      Krause S, Hannah DM, Fleckenstein JH, et al. 2010. Inter-disciplinary perspectives on processes in the hyporheic zone. Ecohydrol. doi: 10.1002/eco.176.

[318]      Kreutz, K. J., Wake, C. P., Aizen, V. B., Cecil, L. D.and Synal, H.-A. 2003. Seasonal deuterium excess in a Tien Shan ice core: Influence of moisture transport and recycling in Central Asia. Geophys. Res. Lett., 30(18), 1922, doi:10.1029/2003GL017896.

[319]      Krupp HK, Biggar JW, Nielsen DR, 1972, Relative flow rates of salt and water in soil. Soil Sci. Soc. Am. Proc. 36: 412-417.

[320]      Lambin, E. F., X. Baulies, N. E. Bockstael, G. Fischer, T. Krug, R. Leemans, E. F. Moran, R. Rindfuss, Y. Sato, D. L. Skole, B. L. Turner II, and C. Vogel (2002), Land-use and land-cover change implementation strategy, IGBP Report No. 48 and IHDP Report No. 10, Louvainla-Neuve, Belgium.

[321]      Leaney, F. W., A. L. Herczeg, and G. R. Walker (2003), Salinization of a fresh palaeo-ground water resource by enhanced recharge, Ground Water, 41, 84-92, doi: 10.1111/j.1745-6584.2003.tb02571.x.

[322]      Leaney, F.W. and Allison, G.B. 1986. Carbon-14 and stable isotope date for an area in the Murray Basin: Its use in estimating recharge. Journal of Hydrology, 88:129-145.

[323]     Leaney, F.W., Herczeg, A.L., Walker, G.R., 2003. Salinization of a fresh palaeo-ground water resource by enhanced recharge. Ground Water 41, 84-92.

[324]     Leaney, F.W., Herczeg, A.L., Walker, G.R., 2003. Salinization of a fresh palaeo-ground water resource by enhanced recharge. Ground Water 41, 84-92.

[325]      Leaney, F.W., Osmond, C.B., Allison, G.B. and Zieglen, H., 1985. Hydrogen-isotope composition of leaf water in C3 and C4 plants, its relation to hydrogen-isotope composition of dry matter. Planta, 164: 215-220.

[326]      Leduc C, Favreau G, Schroeter P (2001) Long-term rise in a Sahelian water table: the Continental Terminal in southwest Niger. J Hydrol 243:43-54

[327]      Leduc, C., Favreau, G., Schroeter, P., 2001. Long-term rise in a Sahelian water table: the Continental Terminal in South-West Niger. J. Hydrol. 243, 43-54.

[328]      Leduc, C., Favreau, G., Schroeter, P., 2001. Long-term rise in a Sahelian water table: the Continental Terminal in South-West Niger. J. Hydrol. 243, 43-54.

[329]      Leduc, C., G. Favreau, and P. Schroeter (2001), Long-term rise in a Sahelian water table: the Continental Terminal in South-West Niger, J. Hydrol., 243, 43-54, doi:10.1016/S0022-1694(00)00403-0.

[330]      Lerner DN. 1997. Groundwater recharge. In: Saether OM, de Caritat P (eds) Geochemical processes, weathering and groundwater recharge in catchments. AA Balkema, Rotterdam, pp 109-150.

[331]      Li FD, Pan GY, Tang CY, Zhang QY, Yu JJ (2008) Recharge source and hydrogeochemical evolution of shallow groundwater in a complex alluvial fan system, southwest of North China Plain. Environmental Geology 55:1109-1122

[332]      Li W, Hao A, Liu Z, Wan L, Guo J. 2000. Study on groundwater exploitation in perspective area in Tarim Basin. Geological Publishing House, Beijing, China, pp149.

[333]      Li W, Hao A, Liu Z, Wan L, Guo J. 2000. Study on groundwater exploitation in perspective area in Tarim Basin. Geological Publishing House, Beijing, pp149.

[334]      Li W, Hao A, Zheng Y, Liu B, Yu D. 2006. Regional environmental isotopic features of groundwater and their hydrogeological explanation in the Tarim Basin. Earth Science Frontiers 13(1): 191-198.

[335]      Li W, Hao A, Zheng Y, Liu B, Yu D. 2006. Regional environmental isotopic features of groundwater and their hydrogeological explanation in the Tarim Basin, Earth Science Frontiers 13(1): 191-198.

[336]      Li W, Hao X, Chen Y, Zhang L, Ma Y and Li J. Response of chemical characters of groundwater to ecological water conveyance in the lower reaches of the Tarim River, Xinjiang, China. Hydrological Processess. this issue.

[337]     Li W, Jiao P, Zhao Z. 1995. Groundwater geochemistry and environmental isotopic hydrogeology study in Taklimakan desert. Hydrogeology and Engineering Geology (4): 22-24 and 54.

[338]      Li YS (2001) Effects of forest on water circle on the loess plateau. J Nat Resour 16(5):427-432 (in Chinese)

[339]      Li YS and Huang MB (2008) Pasture yield and soil water depletion of continuous growing alfalfa in the Loess Plateau of China. Agr Ecosyst Environ 124:24-32

[340]      Li, C., Qi, J., Feng, Z. 2009. Process-based soil erosion simulation on a regional scale: the effect of ecological restoration in the Chinese Loess Plateau. pp 113-130. Doi: 10.1007/978-90-481-2655-2_8. In: R. Yin (ed.) An Integrated Assessment of China’s Ecological Restoration Programs. Springer Science+Business Media B.V.

[341]      Li, W., Hao, A., Liu, Z., Wan, L., Guo, J., 2000. Perspective areas for groundwater development in Tarim Basin. Geological Publishing House, Beijing, 194pp.

[342]      Li, W., Hao, A., Zheng, Y., Liu, B., Yu, D., 2006. Regional environmental isotopic features of groundwater and their hydrogeological explanation in the Tarim Basin. Earth Science Frontiers 13(1), 191-198.

[343]      Li, Y. S., and M. B. Huang (2008), Pasture yield and soil water depletion of continuous growing alfalfa in the Loess Plateau of China, Agr. Ecosyst. Environ., 124, 24-32, doi:10.1016/j.agee.2007.08.007.

[344]      Li, Y.S., 2001. Effects of forest on water circle on the loess plateau (in Chinese). J. Nat. Resour. 16, 427-432.

[345]      Li, Y.S., Huang, M.B., 2008. Pasture yield and soil water depletion of continuous growing alfalfa in the Loess Plateau of China. Agr. Ecosyst. Environ. 124, 24-32.

[346]      Li, Y.S., Huang, M.B., 2008. Pasture yield and soil water depletion of continuous growing alfalfa in the Loess Plateau of China. Agr. Ecosyst. Environ. 124, 24-32.

[347]      Lin RF and Wei KQ (2006) Tritium profiles of pore water in the Chinese loess unsaturated zone: Implications for estimation of groundwater recharge. J Hydrol 328:192-199

[348]      Lin, R. F., and K. Q. Wei (2006), Tritium profiles of pore water in the Chinese loess unsaturated zone: Implications for estimation of groundwater recharge, J. Hydrol., 328, 192-199, doi: 10.1016/j.jhydrol.2005.12.010.

[349]      Lin, R.F. and Wei, K.Q. 2006. Tritium profiles of pore water in the Chinese loess unsaturated zone: Implications for estimation of groundwater recharge. Journal of Hydrology, 328: 192-199.

[350]      Lin, R.F., Wei, K.Q., 2001. Environmental isotope profiles of the soil water in loess unsaturated zone in semi-arid areas of China. In: Isotope Based Assessment of Groundwater Renewal in Water Scarce Regions, IAEA Tecdoc-1246, Y. Yurtsever (ed.). IAEA, Vienna, 101-118.

[351]      Lin, R.F., Wei, K.Q., 2001. Environmental isotope profiles of the soil water in loess unsaturated zone in semi-arid areas of China. In: Isotope Based Assessment of Groundwater Renewal in Water Scarce Regions, IAEA Tecdoc-1246, Y. Yurtsever (ed.). IAEA, Vienna, 101-118.

[352]      Lin, R.F., Wei, K.Q., 2006. Tritium profiles of pore water in the Chinese loess unsaturated zone: Implications for estimation of groundwater recharge. J. Hydrol. 328, 192-199.

[353]      Liu CM, Yu JJ, Kendy E (2001) Groundwater exploitation and its impact on the environment in the North China Plain. Water International 26(2): 265-272

[354]      Liu D, Liu S, Xu Z. 1997. Environmental Isotope studies on shallow groundwater in the lower Tarim River, Xinjiang. Journal of Chengdu University of Technology 24(3): 89-95.

[355]      Liu D, Liu S, Xu Z. 1997. Environmental Isotope studies on shallow groundwater in the lower Tarim River, Xinjiang, Journal of Chengdu University of Technology 24(3): 89-95.

[356]      Liu H, Chen YN, Li W, Yan P. 2008. Community structure and species diversity of natural plant in the middle reaches of the Tarim River. Arid Land Geography 31(1): 109-116.

[357]      Liu H, Chen YN, Li W, Yan P. 2008. Community structure and species diversity of natural plant in the middle reaches of the Tarim River. Arid Land Geography 31(1): 109-116.

[358]      Liu J, Chen Y, Chen YJ. 2007. Study on characteristics of vascular bundle species diversity influenced by water in the middle reaches of Tarim River. Journal of Safety and Environment 7(6): 69-73.

[359]      Liu J, Chen Y, Chen YJ. 2007. Study on characteristics of vascular bundle species diversity influenced by water in the middle reaches of Tarim River. Journal of Safety and Environment 7 (6): 69-73.

[360]      Liu J. 2001. Fluorine concentration changing tentency study of china atmospheric precipitation in the recent ten years. Site Investigation Science and Technology 4: 11-19.

[361]      Liu J. 2001. Fluorine concentration changing tentency study of china atmospheric precipitation in the recent ten years. Site Investigation Science and Technology 4: 11-19.

[362]      Liu TS (1985) Loess and the Environment. Science Press, Beijing, 481 pp (in Chinese)

[363]      Liu, B., F. Phillips, S. Hoines, A.R. Campbell and P. Sharma. 1995. Water movement in desert soil traced by hydrogen and oxygen isotopes, chloride, and chlorine-36, southern Arizona. Journal of Hydrology, 168: 91–110.

[364]      Liu, D., Liu, S., Xu, Z., 1997. Environmental Isotope studies on shallow groundwater in the lower Tarim River, Xinjiang. Journal of Chengdu University of Technology 24(3), 89-95.

[365]      Liu, J., 2001. Fluorine concentration changing tentency study of china atmospheric precipitation in the recent ten years. Site Investigation Science and Technology (4), 11-19.

[366]      Liu, T. S. (1985), Loess and the Environment (in Chinese), Science Press, Beijing, 481 pp.

[367]      Liu, T.S., 1966. Composition and Texture of Loess (in Chinese). Science Press, Beijing, 132pp.

[368]      Liu, T.S., 1985. Loess and the Environment (in Chinese). Science Press, Beijing, 481pp.

[369]      Liu, T.S., Chen, Q.M., Yu, Z.C., Yuan, Z.Y., 1980. Geochemistry issues of endemic fluorosis in China. Geochemica 1: 13-22.

[370]      Liu, T.S., Chen, Q.M., Yu, Z.C., Yuan, Z.Y., 1980. Geochemistry issues of endemic fluorosis in China. Geochemica 1: 13-22.

[371]      Liu, X., X. F. Song, Y. H. Zhang, J. Xia, X. C. Zhang, J. J. Yu, D. Long, F. D. Li, and B. Zhang (in press), Spatio-temporal variations of δ2H and δ18O in precipitation and shallow groundwater in the Hilly Loess Region of the Loess Plateau, China, Environ. Earth Sci., doi: 10.1007/s12665-010-0785-y.

[372]      Loheide II, S.P., Gorelick, S.M., 2007. Riparian hydroecology: A coupled model of the observed interactions between groundwater flow and meadow vegetation patterning. Water Resources Research 43, W07414, doi:10.1029/2006WR005233.

[373]      Loheide, S. P., II, and S. M. Gorelick (2007), Riparian hydrogeology: A coupled model of the observed interactions between groundwater flow and meadow vegetation patterning, Water Resour. Res., 43, W07414, doi:10.1029/2006WR005233.

[374]      LPISST-Loessical Plateau Integrated Scientific Survey Team (Chinese Academy of Sciences), 1990. Study on rational development and utilization of groundwater resources in Loessical Plateau area (in Chinese). Xueyu Publishing House, Beijing, 93pp.

[375]      Lu Y, Tang C, Chen J, Song X, Li F, Sakur Y (2008) Spatial characteristics of water quality, stable isotopes and tritium associated with groundwater flow in the Hutuo River alluvial fan plain of the North China Plain. Hydrogeology Journal 16(5): 1003-1015

[376]      Luo P, Peng P, Gleixner G, Zheng Z, Pang Z, Ding Z (2011) Empirical relationship between leaf wax n-alkane δD and altitude in the Wuyi, Shennongjia and Tianshan Mountains, China: Implications for paleoaltimetry. Earth Planet. Sci. Lett, 301: 285–296.

[377]      Lymbery AJ, Doup RG, Pettit NE (2003) Effects of salinisation on riparian plant communities in experimental catchments on the Collie River, Western Australia. Australian Journal of Botany. 51: 667-672

[378]      Lymbery, A.J., Doup, R.G., Pettit, N.E., 2003. Effects of salinisation on riparian plant communities in experimental catchments on the Collie River, Western Australia. Australian Journal of Botany 51, 667-672.

[379]      Ma J and Edmunds WM (2006) Groundwater and lake evolution in the Badain Jaran desert ecosystem, Inner Mongolia. Hydrogeol J 14:1231-1243

[380]      Ma J and Edmunds WM. 2006. Groundwater and lake evolution in the Badain Jaran Desert ecosystem, Inner Mongolia. Hydrogeology Journal 14: 1231-1243.

[381]      Ma J, Ding Z, Gates J, Su Y. Chloride and the environmental isotopes as the indicators of the groundwater recharge in the Gobi Desert, northwest China, Environmental Geology, 2007, 55: 1407-1419

[382]      Ma, J. Z., and W. M. Edmunds (2006), Groundwater and lake evolution in the Badain Jaran Desert ecosystem, Inner Mongolia, Hydrogeol. J., 14, 1231-1243, doi: 10.1007/s10040-006-0045-0.

[383]      Ma, J. Z., Z. Y. Ding, W. M. Edmunds, J. B. Gates, T. M. Huang (2009), Limits to recharge of groundwater from Tibetan plateau to the Gobi desert, implications for water management in the mountain front, J. Hydrol., 364, 128-141, doi: 10.1016/j.jhydrol.2008.10.010.

[384]      Ma, J., Ding, Z., Edmunds, W.M., Gates, J.B., Huang, T., 2009. Limits to recharge of groundwater from Tibetan Plateau to the Gobi desert, implications for water management in the Mountain front. Journal of Hydrology 364, 128-141.

[385]      Ma, J., Edmunds, W.M., 2006. Groundwater and lake evolution in the Badain Jaran Desert ecosystem, Inner Mongolia. Hydrogeology Journal 14, 1231-1243.

[386]      Ma, J., Wang, X., Edmunds, W.M., 2005. The characteristics of groundwater resources and their changes under the impacts of human activity in the arid North-West China – a case study of the Shiyang river basin. Journal of Arid Environments 61, 277-295.

[387]      Ma, J.Z. and Edmunds, W.M. 2006. Groundwater and lake evolution in the Badain Jaran Desert ecosystem, Inner Mongolia. Hydrogeology Journal, 14: 1231-1243.

[388]      Ma, J.Z., Ding, Z.Y., Edmunds, W.M., Gates, J.B., Huang, T.M., 2009. Limits to recharge of groundwater from Tibetan plateau to the Gobi desert, implications for water management in the mountain front. J. Hydrol. 364, 128-141.

[389]      Ma, J.Z., Ding, Z.Y., Edmunds, W.M., Gates, J.B., Huang, T.M., 2009. Limits to recharge of groundwater from Tibetan plateau to the Gobi desert, implications for water management in the mountain front. J. Hydrol. 364, 128-141.

[390]      Ma, J.Z., Edmunds, W.M., 2006. Groundwater and lake evolution in the Badain Jaran desert ecosystem, Inner Mongolia. Hydrogeol. J. 14, 1231-1243.

[391]      Manchanda G and Garg N. 2008. Salinity and its effects on the functional biology of legumes. Acta Physiol Plant 30:595–618

[392]      Manchanda, G., Garg, N., 2008. Salinity and its effects on the functional biology of legumes. Acta Physiologiae Plantarum 30, 595-618.

[393]      Margalef R. 1958. Information theory in ecology. General Systems Yearbook 3: 36-71.

[394]      Maxwell EW and Kollet SJ (2008) Interdependence of groundwater dynamics and land-energy feedbacks under climate change. Nat Geosci 1:665-669

[395]      Maxwell, R.M. and Kollet S.J. 2008. Interdependence of groundwater dynamics and land-energy feedbacks under climate change. Nature Geoscience 1: 665-669.

[396]      Mayer, P.M., Reynolds, S.K., McCutchen, M.D., Canfield, T.J., 2006. Riparian buffer width, vegetative cover, and nitrogen removal effectiveness: a review of current science and regulations. EPA/600/R-05/118. U.S. Environmental Protection Agency, Cincinnati, OH

[397]      Mayr, C., Lücke, A., Stichler, W., Trimborn, P., Ercolano, B., Oliva, G., Ohlendorf, C., Soto, J., Fey, M.,Haberzettl, T., Precipitation origin and evaporation of lakes in semi-arid Patagonia (Argentina) inferred from stable isotopes ([delta] 18O,[delta] 2H). Journal of Hydrology, 2007. 334(1-2): p. 53-63.

[398]      Mazor E (2004) Chemical and Isotopic Groundwater Hydrology (Third Edition). Marcel Dekker, New York, 453 pp

[399]      Mazor E. Applied chemical and isotopic groundwater hydrology[M]. Milton Keynes: Open University Press, 1991, pp147-164.

[400]      Mazor, E., 2004. Chemical and Isotopic Groundwater Hydrology (Third Edition). Marcel Dekker, Inc. New York, 453pp.

[401]      Mazor, E., 2004. Chemical and Isotopic Groundwater Hydrology (Third Edition). Marcel Dekker, Inc. New York, 453pp.

[402]      Meybeck, M., and C. J. Vörösmarty (2004), The integrity of river and drainage basin systems: Challenges from environmental change, in Vegetation, Water, Humans and the Climate: A New Perspective on an Interactive System, edited by P. Kabat et al., pp. 297-479, Springer-Verlag, New York.

[403]      Michel RI. 2005. Tritium in the hydrologic cycle. In Isotopes in the Water Cycle: Past, Present and Future of a Developing Science P.K. Aggarwal, J.R. Gat and K.F.O. Froehlich (eds). Springerlink, Netherlands.53-66

[404]      Michel RI. 2005. Tritium in the hydrologic cycle. In: Isotopes in the Water Cycle: Past, Present and Future of a Developing Science P.K. Aggarwal, J.R. Gat and K.F.O. Froehlich (eds). Springerlink, Netherlands. 53-66.

[405]      Michel, R. I. (2005), Tritium in the hydrologic cycle, in Isotopes in the Water Cycle: Past, Present and Future of a Developing Science, edited by P. K. Aggarwal et al., pp. 53-66, Springerlink, Netherlands.

[406]      Michel, R.I., 2005. Tritium in the hydrologic cycle. In: Isotopes in the Water Cycle: Past, Present and Future of a Developing Science. P.K. Aggarwal, J.R. Gat and K.F.O. Froehlich (eds). Springerlink, Netherlands, 53-66.

[407]      Mohamed, Y. A., B. J. J. M. Vandenhurk and H. H. G. Savenije (2007), Moisture recycling over the Nile basin, in ‘Reducing the Vulnerability of Societies to Water Related Risks at the Basin Scale’ (Proceedings of the third International Symposium on Integrated Water Resources Management, Bochum, Germany, September 2006). IAHS Publ. 317.

[408]      Mook WG. 2000. Environmental isotopes in the hydrological cycle: principles and applications. IHP-, Technical Documents in Hydrology, No. 39, Vol. -, UNESCO, Paris.

[409]      Mook WG. 2000. Environmental isotopes in the hydrological cycle: principles and applications. IHP-, Technical Documents in Hydrology, No. 39, Vol. -, UNESCO, Paris.

[410]      Mu XM, Zhang L, McVicar TR, Chille B, Gau P (2007) Analysis of the impact of conservation measures on stream flow regime in catchments of the Loess Plateau, China. Hydrol Process 21:2124-2134

[411]       Mu, X. M., L. Zhang, T. R. McVicar, B. Chille, and P. Gau (2007), Analysis of the impact of conservation measures on stream flow regime in catchments of the Loess Plateau, China, Hydrol. Process., 21, 2124-2134, doi: 10.1002/hyp.6391.

[412]      Mu, X.M., Zhang, L., McVicar, T.R., Chille, B., Gau, P., 2007. Analysis of the impact of conservation measures on stream flow regime in catchments of the Loess Plateau, China. Hydrol. Process. 21, 2124-2134.

[413]      Mu, X.M., Zhang, L., McVicar, T.R., et al. 2007. Analysis of the impact of conservation measures on stream flow regime in catchments of the Loess Plateau, China. Hydrological Processes, 21: 2124-2134.

[414]      Nativ, R., E. Adar, O. Dahan, and M. Geyh. 1995. Water Recharge and Solute Transport Through the Vadose Zone of Fractured Chalk Under Desert Conditions. Water Resources Research 31(2), 253–261.

[415]      Niu, T., Li, X., 2008. Study on Landscape Change and Vegetation Restoration in the Lower Reaches of Tarim River. Remote Sensing Information (5), 68-73.

[416]      Nofziger, D.L., Wu, J.Q., 2005. Chemical Mixing in an Aquifer (Software of Aquifer Mixing). http://soilphysics.okstate.edu [Accessed Dec 2009].

[417]      Nofziger, D.L., Wu, J.Q., 2005. Chemical Mixing in an Aquifer (Software of Aquifer Mixing). http://soilphysics.okstate.edu [Accessed Dec 2009].

[418]      O'Brien, R., C. K. Keller, and J. L. Smith (1996), Multiple Tracers of Shallow Ground-Water Flow and Recharge in Hilly Loess, Ground Water, 34, 675-682, doi: 10.1111/j.1745-6584.1996.tb02055.x.

[419]      O'Brien, R., Keller, C.K., Smith, J. L., 1996. Multiple Tracers of Shallow Ground-Water Flow and Recharge in Hilly Loess. Ground Water 34, 675-682.

[420]      O'Brien, R., Keller, C.K., Smith, J. L., 1996. Multiple Tracers of Shallow Ground-Water Flow and Recharge in Hilly Loess. Ground Water 34, 675-682.

[421]      Okada A, Yabuki S, Liu C and Huang Z. 1992. Distribution of salt-constituting chemical species in the Desert Soils of the Turpan Basin and Junggar Basin, Xinjiang,China. Journal of Arid Land Studies 2: 29-37.

[422]      Okada A, Yabuki S, Liu C and Huang Z. 1992. Distribution of salt-constituting chemical species in the Desert Soils of the Turpan Basin and Junggar Basin, Xinjiang,China. Journal of Arid Land Studies 2: 29-37.

[423]      Pang Z (2001) Chemical and isotope geothermometry and applications. Science in China, 44(S): 16-20.

[424]      Pang Z (2006) pH dependent isotope variations in arc-type geothermal fluids: new insights into their origins. Journal of Geochemical Exploration, 89: 306-308.

[425]      Pang Z , Wang J , Guo Y , Zhang F, Ji RQin D, Xu B, Su R (2007) Study of Groundwater in Beishan Granite Body Using a downhole Double-Packer Hydrogelogical testing system. Chinese Journal of Rock Mechanics and Engineering, 26 (S2): 3954-3958.

[426]      Pang Z, Huang T, Chen Y (2010) Diminished groundwater recharge and circulation relative to degrading riparian vegetation in the middle Tarim River. Hydrological Processes, 24:145-157.

[427]      Pang Z, Huang T, Chen Y, 2010. Diminished groundwater recharge and circulation relative to degrading riparian vegetation in the middle Tarim River, Hydrological Processes, 24:145-157.

[428]      Pang Z, Kong Y, Froehlich K, Huang T, Yuan L, Li Z, Wang F (2011) Processes affecting isotopes in precipitation of an arid region. Tellus B, in press.

[429]      Pang Z, Kong Y, Froehlich K, Huang T, Yuan L, Li Z, Wang F., 2011, Processes affecting isotopes in precipitation of an arid region. Tellus B. in press.

[430]      Pang Z, Qin D, Yang Y, 2007. Isotopes in deep groundwater in Northwest China: hydrological and paleoclimatic implications, Proc. of abstracts of International Symposium on Advances in Isotope Hydrology and Its Role in Sustainable Water Resources Management, 21-25 May, International Atomic Energy Agency, Vienna, IAEA-CN151/122.

[431]      Pang Z, Reed M (1998) Theoretical chemical geothermometry on geothermal waters: Problems and methods. Geochimica et Cosmochimica Acta, 62: 1083-1091.

[432]      Pang Z, Truesdell AH (2005) Preface to the set of papers on “Isotope and Hydrochemical Techniques Applied to Geothermal Systems”. Geothermics, 34: 440–441.

[433]      Pang Z, Wang J, Fan Z (1990) Calculation of the reservoir temperature of Zhangzhou Geothermal Field using a SiO2 mixing model. Chinese Science Bulletin, 35: 1360-1363.

[434]      Pang Z, Wang J, Zhao P, Jin J (1995) Saline thermal waters from geothermal systems in the granite terrain (Zhangzhou Geothermal system and surroundings, southeast of China)-- 1. Origin and recharge of the thermal water traced by oxygen and hydrogen isotopes. Geothermal Science & Technology, 4: 273-286.

[435]      Pang, Z., Huang, T., Chen, Y., 2010. Diminished groundwater recharge and circulation relative to degrading riparian vegetation in the middle Tarim River, Xinjiang Uygur, Western China. Hydrological Processes 24, 147-159.

[436]      Parkhurst DL, Appelo CAJ (2000) User’s Guide to PHREEQC(Version 2) —A compute program for speciation , batch2reaction ,one2dimensional transport , and inverse geochemical calculations. USGS.

[437]      Parkhurst DL, Appelo CAJ. 1999. User’s Guide to PHREEQC (Version 2) —A compute program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations. USGS. pp312.

[438]      Parkhurst, D.L., Appelo, C.A.J., 1999. User’s Guide to PHREEQC (Version 2) -A compute program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations. USGS, 312pp.

[439]      Parkhurst, D.L., Appelo, C.A.J., 1999. User’s Guide to PHREEQC (Version 2) -A compute program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations. USGS, 312pp.

[440]      Parkhurst, D.L., Appelo, C.A.J., 1999. User’s Guide to PHREEQC (Version 2) -A compute program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations. USGS, 312pp.

[441]      Peng. H, B. Mayer, A. Norman, and H. R. Krouse (2005), Modeling of hydrogen and oxygen isotope compositions for local precipitation, Tellus, 57B, 273-282.

[442]      Phillips FM (1994) Environmental tracers for water movement in desert soils of the American Southwest. Soil Sci Soc Am J 58:15-24

[443]      Phillips FM, Mattick JL, Duval TA (1988) Chlorine 36 and tritium from nuclear weapons fallout as tracers for long-term liquid movement in desert soils. Water Resour Res 24:1877-1891

[444]      Phillips, F. M., J. L. Mattick, and T. A. Duval (1988), Chlorine 36 and tritium from nuclear weapons fallout as tracers for long-term liquid movement in desert soils, Water Resour. Res., 24, 1877-1891, doi: 10.1029/WR024i011p01877.

[445]      Phillips, F. M., Mattick, J. L., and Duval, T. A., 1988. Chlorine 36 and tritium from nuclear weapons fallout as tracers for long-term liquid movement in desert soils. Water Resour. Res., 24: 1877-1891.

[446]     Phillips, F.M. 1994. Environmental tracers for water movement in desert soils of the American southwest. Soil Sci. Soc. Am. J. 58: 15-24.

[447]      Phillips, F.M., 1994. Environmental tracers for water movement in desert soils of the American Southwest. Soil Science Society of America Journal 58, 14-24.

[448]      Phillips, F.M., 1994. Environmental tracers for water movement in desert soils of the American Southwest. Soil Sci. Soc. Am. J. 58, 15-24.

[449]      Piao, S., Ciais P., Huang, Y., Shen, Z., Peng, S., Li, J., Zhou, L., Liu, H., Ma, Y., Ding Y., Friedlingstein, P., Liu, C., Tan, K., Yu, Y., Zhang, T., Fang,J., 2010. The impacts of climate change on water resources and agriculture in China. Nature, 467, doi: 10.1038/nature09364.

[450]      Prasanna, M.V., Chidambaram, S., Hameed, A.S., Srinivasamoorthy, K., 2009. Study of evaluation of groundwater in Gadilam basin using hydrogeochemical and isotope data. Environmental Monitoring and Assessment doi: 10.1007/s10661-009-1092-5.

[451]      Puckett, L.J., Hughes, W.B., 2005. Transport and fate of nitrate and pesticides: hydrogeology and riparian zone processes. J. Environ. Qual. 34 (6), 2278–2292.

[452]      Qin D, Turner JV, Pang Z (2005), Hydrogeochemistry and groundwater circulation in the Xi’an geothermal field, China. Geothermic, 34: 471-494.

[453]      Qu HL (1991) Assessment of Groundwater Resources in the Arid and Semiarid Land of China. Science Press, Beijing, 457 pp (in Chinese)

[454]      Qu, H.L., 1991. Assessment of Groundwater Resources in the Arid and Semiarid Land of China (in Chinese). Science Press, Beijing, 457pp.

[455]      Revesz K and Woods P H. 1990. A Method to Extract Soil Water for Stable Isotope Analysis. Journal of Hydrology, 115: 397-406.

[456]      Revesz, K., and P. H. Woods (1990), A Method to Extract Soil Water for Stable Isotope Analysis. J. Hydrol., 115,397-406, doi: 10.1016/0022-1694(90)90217-L.

[457]      Richardson DM, Holmes PM, Esler KJ, Galatowitsch SM, Stromberg JC, Kirkman SP, Pysek P, Hobbs RJ (2007) Riparian vegetation: degradation, alien plant invasions, and restoration prospects, Diversity and Distributions, 13:126-139

[458]      Richardson, D.M., Holmes, P.M., Esler, K.J., Galatowitsch, S.M., Stromberg, J.C., Kirkman, S.P., Pysek, P., Hobbs, R.J., 2007. Riparian vegetation: degradation, alien plant invasions, and restoration prospects. Diversity and Distributions 13, 126-139.

[459]      Robertson W, Cherry J. Tritium as an indicator of recharge and dispersion in a groundwater system in central Ontario[J]. Water Resources Research.. 1989, 25(6):1097-1109

[460]      Rose CW, Dayananda, PWA, Nielson DR, Biggar JW (1979) Long-term solute dynamics and hydrology in irrigated slowly permeable soils. Irrigation Sci 1:77-87

[461]      Rose, C.W., Dayananda, P.W.A., Nielson, D.R., Biggar, J.W., 1979. Long-term solute dynamics and hydrology in irrigated slowly permeable soils. Irrigation Sci. 1, 77-87.

[462]      Rose, C.W., Dayananda, P.W.A., Nielson, D.R., Biggar, J.W., 1979. Long-term solute dynamics and hydrology in irrigated slowly permeable soils. Irrigation Sci. 1, 77-87.

[463]      Rose, C.W., P. W. A. Dayananda, D. R. Nielson, and J. W. Biggar (1979), Long-term solute dynamics and hydrology in irrigated slowly permeable soils, Irrigation Sci., 1, 77-87, doi: 10.1007/BF00263091.

[464]      Rozanski K, Araguas-Araguas L, Gonfiantini R. 1992. Relation Between Long-Term Trends of Oxygen-18 Isotope Composition of Precipitation and Climate. Science 258: 981 – 985.

[465]      Rozanski K, Araguas-Araguas L, Gonfiantini R. 1993. Isotopic patterns in modern global precipitation. In: Climate Change in Continental Isotopic Records Swart PK, Lohmann KC, McKenzie J and Savin S (eds), American Geophysical Union, Geophysical Monograph. 1-36.

[466]      Rozanski K, Araguas-Araguas L, Gonfiantini R. 1993. Isotopic patterns in modern global precipitation. In Climate Change in Continental Isotopic Records Swart PK, Lohmann KC, McKenzie J and Savin S (eds), American Geophysical Union, Geophysical Monograph. 1-36.

[467]      Salama R B, Otto C J, Fitzpatrick R W. Contributions of groundwater conditions to soil and water salinization [J]. Journal of Hydrology, 1999, 7: 46 - 64.

[468]      Sanford W (2002) Recharge and groundwater models: an overview. Hydrogeol J 10:110-120

[469]      Sanford, W. 2002. Recharge and groundwater models: an overview. Hydrogeology Journal 10:110-120.

[470]      Sarin MM, Krishnaswami S, Dilli K, Somayajulu K and Moore WS. 1989. Major ion chemistry of the Ganga-Brahmaputra river system: Weathering processes and fluxes to the Bay of Bengal. Geochim. Cosmochim. Acta 53: 977-1009.

[471]      Sarin MM, Krishnaswami S, Dilli K, Somayajulu K and Moore WS. 1989. Major ion chemistry of the Ganga-Brahmaputra river system: Weathering processes and fluxes to the Bay of Bengal. Geochim. Cosmochim. Acta 53: 977-1009.

[472]      Savenjie, H. H. G. (1995), New definitions or moisture recycling and the relationship with land-use changes in the Sahel, J. Hydrol., 167, 57-78.

[473]      Saxena RK, Dressie Z. 1984. Estimation of groundwater recharge and moisture movement in sandy formations by tracing natural oxygen-18 and injected tritium profiles in the unsaturated zone. Pp 139-150. In: Isot. Hydrol., Proc. Symp. Isot. Hydrol. Water Resour. Dev., Vienna. 12-16 Sept. 1983. IAEA, Vienna.

[474]      Scanlon BR (1991) Evaluation of moisture flux from chloride data in desert soils. J Hydrol 128:137-156

[475]      Scanlon BR, Keese KE, Flint AL, Flint LE, Gaye CB, Edmunds WM, Simmers I (2006) Global synthesis of groundwater recharge in semiarid and arid regions. Hydrol Process 20:3335-3370

[476]      Scanlon BR, Mukherjee A, Gates J, Reedy RC, Sinha AK. 2010. Groundwater recharge in natural dune systems and agricultural ecosystems in the Thar Desert region, Rajasthan, India. Hydrogeology Journal. 18: 959-972.

[477]      Scanlon BR, Reedy RC, Stonestrom DA, Prudic DE, Dennehy KF (2005) Impact of land use and land cover change on groundwater recharge and quality in the southwestern USA. Global Change Biol 11:1577-1593

[478]      Scanlon BR, Reedy RC, Tachovsky JA (2007) Semiarid unsaturated zone chloride profiles: Archives of past land use change impacts on water resources in the southern High Plains, United States. Water Resour Res 43, W06423, doi:10.1029/2006WR005769.

[479]      Scanlon, B. R. 1992. Evaluation of liquid and vapor water flow in desert soils based on chlorine 36 and tritium tracers and nonisothermal flow simulations. Water Resources Research, 28: 285-297.

[480]      Scanlon, B. R., A. Mukherjee, J. Gates, R. C. Reedy, and A. K. Sinha (2010b) Groundwater recharge in natural dune systems and agricultural ecosystems in the Thar Desert region, Rajasthan, India, Hydrogeol. J., 18, 959-972, doi: 10.1007/s10040-009-0555-7.

[481]      Scanlon, B. R., D. A. Stonestrom, R. C. Reedy, F. W. Leaney, J. Gates, and R. G. Cresswell (2009), Inventories and mobilization of unsaturated zone sulfate, fluoride and chloride related to land use change in semiarid regions, southwestern United States and Australia, Water Resour. Res., 45, W00A18, doi:10.1029/2008WR006963.

[482]      Scanlon, B. R., Healy, R. W., and Cook, P. G., 2002. Choosing appropriate techniques for quantifying groundwater recharge. Hydrogeology Journal 10: 18-39.

[483]      Scanlon, B. R., I. Jolly, M. Sophocleous, and L. Zhang (2007a), Global impacts of conversions from natural to agricultural ecosystems on water resources: Quantity versus quality, Water Resour. Res., 43, W03437, doi:10.1029/2006WR005486.

[484]      Scanlon, B. R., K. E. Keese, A. L. Flint, L. E. Flint, C. B. Gaye, W. M. Edmunds, and I. Simmers (2006), Global synthesis of groundwater recharge in semiarid and arid regions, Hydrol. Process., 20, 3335-3370, doi: 10.1002/hyp.6335.

[485]      Scanlon, B. R., R. C. Reedy, and J. A. Tachovsky (2007b), Semiarid unsaturated zone chloride profiles: Archives of past land use change impacts on water resources in the southern High Plains, United States, Water Resour. Res., 43, W06423, doi:10.1029/2006WR005769.

[486]      Scanlon, B. R., R. C. Reedy, and J. B. Gates (2010a), Effects of irrigated agroecosystems: 1. Quantity of soil water and groundwater in the southern High Plains, Texas, Water Resour. Res., 46, W09537, doi:10.1029/2009WR008427.

[487]      Scanlon, B. R., R. C. Reedy, D. A. Stonestrom, D. E. Prudic, and K. F. Dennehy (2005), Impact of land use and land cover change on groundwater recharge and quality in the southwestern USA, Global. Change. Biol., 11, 1577- 1593, doi: 10.1111/j.1365-2486.2005.01026.x.

[488]      Scanlon, B. R., R. C. Reedy, D. A. Stonestrom, D. E. Prudic, and K. F. Dennehy. 2005. Impact of land use and land cover change on groundwater recharge and quality in the southwestern USA. Global Change Biol. 11: 1577- 1593.

[489]      Scanlon, B.R. 2000. Uncertainties in estimating water fluxes and residence times using environmental traces in an arid unsaturated zone. Water Resources Research, 36: 395-409.

[490]      Scanlon, B.R., 1991. Evaluation of moisture flux from chloride data in desert soils. Journal of Hydrology 128, 137-156.

[491]      Scanlon, B.R., Jolly, I., Sophocleous, M., Zhang, L., 2007a. Global impacts of conversions from natural to agricultural ecosystems on water resources: Quantity versus quality. Water Resour. Res. 43, W03437, doi:10.1029/2006WR005486.

[492]      Scanlon, B.R., Jolly, I., Sophocleous, M., Zhang, L., 2007b. Global impacts of conversions from natural to agricultural ecosystems on water resources: Quantity versus quality. Water Resour. Res. 43, W03437, doi:10.1029/2006WR005486.

[493]      Scanlon, B.R., Keese, K.E., Flint, A.L., Flint, L.E., Gaye, C.B., Edmunds, W.M., Simmers, I., 2006. Global synthesis of groundwater recharge in semiarid and arid regions. Hydrol. Process. 20, 3335–3370.

[494]      Scanlon, B.R., Keese, K.E., Flint, A.L., Flint, L.E., Gaye, C.B., Edmunds, W.M., Simmers, I. 2006. Global synthesis of groundwater recharge in semiarid and arid regions. Hydrological Processes 20: 3335-3370.

[495]      Scanlon, B.R., Reedy, R.C., Tachovsky, J.A., 2007a. Semiarid unsaturated zone chloride profiles: Archives of past land use change impacts on water resources in the southern High Plains, United States. Water Resour. Res. 43, W06423, doi:10.1029/2006WR005769.

[496]      Scanlon, B.R., Reedy, R.C., Tachovsky, J.A., 2007b. Semiarid unsaturated zone chloride profiles: Archives of past land use change impacts on water resources in the southern High Plains, United States. Water Resources Research, 43, W06423, doi:10.1029/2006WR005769.

[497]      Scanlon, B.R., Stonestrom, D.A., Reedy, R.C., Leaney, F.W., Gates, J., Cresswell, R.G., 2009. Inventories and mobilization of unsaturated zone sulfate, fluoride and chloride related to land use change in semiarid regions, southwestern United States and Australia. Water Resour. Res. 45, W00A18, doi:10.1029/2008WR006963.

[498]      Scanlon, B.R., Stonestrom, D.A., Reedy, R.C., Leaney, F.W., Gates, J., Cresswell, R.G., 2009. Inventories and mobilization of unsaturated zone sulfate, fluoride and chloride related to land use change in semiarid regions, southwestern United States and Australia. Water Resour. Res. 45, W00A18, doi:10.1029/2008WR006963.

[499]      Schmalz BL, Polzer WL. 1969. Tritiated water distribution in unsaturated soil. Soil Sci. 108: 43-47.

[500]      Sharma ML and Hughes MW. 1985. Groundwater recharge estimation using chloride, deuterium and oxygen-18 profiles in the deep coastal sands of western Australia. Journal of Hydrology, 81: 93-109.

[501]      Shatkay, M. and Margaritz, M., 1987. Dolomization and sulphate reduction in the mixing zone between brine and meteoric water in the newly exposed shores of the Dead Sea. Geochim. Cosmochim. Acta, 51: 1135-1141.

[502]      Shen Z, Zhu W, Zhong Z (1993). Hydrogeochemistry. Beijing, Geological Publishing House. Beijing, China.  pp 189

[503]      Shen, Y., Wang, S., 2002. New progress in glacier and water resources changes in Tarim Basin, Xinjiang. Journal of Glaciology and Geocryology 24(6), p819.

[504]      Shen, Z., Zhu, W., Zhong, Z., 1993. Hydrogeochemistry. Beijing, Geological Publishing House. Beijing, China, 189 pp.

[505]      Shi H, Shao MA (2000) Soil and water loss from the Loess Plateau in China. J Arid Environ 45:9-20

[506]      Shi, H., and M. A. Shao (2000), Soil and water loss from the Loess Plateau in China, J. Arid Environ., 45, 9-20, doi:10.1006/jare.1999.0618.

[507]      Shi, H., Shao, M.A., 2000. Soil and water loss from the Loess Plateau in China. J. Arid Environ. 45, 9-20.

[508]      Shi, Y., Zhang, X. 1995. Effects and future trend of climate change on surface water resources in arid areas in northwest China. Sciences in China (B), 9, 959–976.

[509]      Silburn DM, Cowie BA, Thornton CM. 2009. The Brigalow Catchment Study revisited: Effects of land development on deep drainage determined from non-steady chloride profiles. Journal of Hydrology 373: 487-498.

[510]      Silburn, D. M., B. A. Cowie, and C. M. Thornton (2009), The Brigalow Catchment Study revisited: Effects of land development on deep drainage determined from non-steady chloride profiles, J. Hydrol., 373, 487-498, doi:10.1016/j.jhydrol.2009.05.012.

[511]       Simpson HJ, Hamza MS, White JWC, Nada A and Awad WA. (1987) Evaporative enrichment of deuterium and 18O in arid irrigation. In: Isotope Techniques in Water Resources Development, IAEA Symposium 299, March 1987, Vienna: 241-256.

[512]      Sloto, R.A., 2008, Effects of land-use changes and ground-water withdrawals on stream base flow, Pocono Creek watershed, Monroe County, Pennsylvania: U.S. Geological Survey Scientific Investigations Report 2008-5030, 38 p.

[513]      Smith DB, Wearn PL, Richards HJ, Rowe PC (1970) Water movement in the unsaturated zone of high and low permeability strata by measuring natural tritium. Proc. Symp. Isotope Hydrol (IAEA). pp 73-87

[514]      Smith, D. B., P. L. Wearn, H. J. Richards, and P. C. Rowe (1970), Water movement in the unsaturated zone of high and low permeability strata by measuring natural tritium, in Proceedings of the Symposium on Isotope Hydrology, pp. 73-87, IAEA, Vienna.

 

[515]      Smith, D.B., Wearn, P.L., Richards, H.J., Rowe, P.C., 1970. Water movement in the unsaturated zone of high and low permeability strata by measuring natural tritium, In: Proceedings of the Symposium on Isotope Hydrology, IAEA, Vienna, pp. 73-87.

[516]      Solomon DK and Cook PG. 2000. 3H and 3He. In Environmental Tracers in Subsurface Hydrology. P.G. Cook & A.L. Herczeg (eds). Kluwer, Boston.. 397-424.

[517]      Solomon DK and Cook PG. 2000. 3H and 3He. In Environmental Tracers in Subsurface Hydrolog. Cook PG and Herzeg AL (eds). Kluwer, Boston. 397-424.

[518]      Solomon, D. K. and P. G. Cook (2000), 3H and 3He, in Environmental Tracers in Subsurface Hydrology, edited by P. G. Cook and A. L. Herczeg, pp. 397-424, Kluwer Academic Press.

[519]      Song Y, Fan Z, Lei Z, et al., Research on water resources and ecology of Tarim River, China. Urumqi, Xinjiang People’s Press, 2000,pp481

[520]      Song, Y., Fan, Z., Lei, Z., 2000. Research on water resources and ecology of Tarim River, China. Xinjiang People’s Press, Urumqi, China, 481pp.

[521]      Sophocleous M. 2002. Interactions between groundwater and surface water: the state of the science. Hydrogeol J 10: 52–67.

[522]      Stallard RF and Edmond JM . 1981. Geochemistry of the Amazon, 1, Precipitation chemistry and the marine contribution to the dissolved load at the time of peak discharge. Journal of Geophysics Research 86: 9844-9858.

[523]      Stallard RF and Edmond JM. 1981. Geochemistry of the Amazon, 1, Precipitation chemistry and the marine contribution to the dissolved load at the time of peak discharge. Journal of Geophysical Research 86: 9844-9858.

[524]      Stewart, G.L., 1972. Clay-water interaction, the behavior of 3H and 2H in absorbed water, and the isotope effect. J. Soil Sci. Soc. Am., 36: 421-426.

[525]      Stone, W.J., 1992. Paleohydrologic implications of some deep soil water chloride profiles, Murray Basin, South Australia. J. Hydrol. 132, 201-223.

[526]      Stone, W.J., 1992. Paleohydrologic implications of some deep soil water chloride profiles, Murray Basin, South Australia. J. Hydrol. 132, 201-223.

[527]      Stonestrom, D. A., B. R. Scanlon, and L. Zhang (2009), Introduction to special section on Impacts of Land Use Change on Water Resources, Water Resour. Res., 45, W00A00, doi:10.1029/2009WR007937.

[528]      Stonestrom, D.A., Prudic, D.E., Laczniak, R.J., Akstin, K.C., Boyd, R.A., Henkelman, K.K., 2003. Estimates of deep percolation beneath native vegetation, irrigated fields, and the Amargosa-River channel, Amargosa Desert, Nye County, Nevada, U.S. Geological Survey. Open Report 03-104.

[529]      Stonestrom, D.A., Prudic, D.E., Laczniak, R.J., Akstin, K.C., Boyd, R.A., Henkelman, K.K., 2003. Estimates of deep percolation beneath native vegetation, irrigated fields, and the Amargosa-River channel, Amargosa Desert, Nye County, Nevada, U.S. Geological Survey. Open Report 03-104.

[530]      Stonestrom, D.A., Scanlon, B.R., Zhang, L., 2009. Introduction to special section on Impacts of Land Use Change on Water Resources. Water Resour. Res., 45, W00A00, doi:10.1029/2009WR007937.

[531]      Stromberg J C, Tiller R, Richter B, 1996. Effects of groundwater decline on riparian vegetation of semiarid region: the San Pedro, Arizona. Ecological Applications 6 (1), 113–131.

[532]      Stromberg J. C., Beauchamp V. B., Dixon M. D., Lite S. J. and Paradzick C. (2007) Importance of low-flow and high-flow characteristics to restoration of riparian vegetation along rivers in arid south-western United States, Freshwater Biology (2007) 52, 651–679

[533]      Stromberg, J. C., Beauchamp, V. B., Dixon, M. D., Lite, S. J., Paradzick, C., 2007. Importance of low-flow and high-flow characteristics to restoration of riparian vegetation along rivers in arid south-western United States. Freshwater Biology 52, 651-679.

[534]      Stromberg, J.C., Tiller, R., Richter, B., 1996. Effects of groundwater decline on riparian vegetation of semiarid region: the San Pedro, Arizona. Ecological Applications 6(1), 113-131.

[535]      Sukhija BS, Reddy DV, Nagabhushanam P, Hussain S. 2003. Recharge processes: piston flow vs. preferential flow in semi-arid aquifers of India. Hydrogeology Journal, 11: 387-395.

[536]      Sun G, Zhou G, Zhang Z, et al. 2006. Potential water yield reduction due to forestation across China. Journal of Hydrology, 328: 548-558.

[537]      Tamea, S., Laio, F., Ridolfi, L., D'Odorico, P., Rodriguez-Iturbe, I., 2009. Ecohydrology of groundwater-dependent ecosystems: 2. Stochastic soil moisture dynamics. Water Resources Research 45, W05420, doi:10.1029/2008WR007293.

[538]      Tao, H., Gemmer, M., Song, Y., Jiang, T., 2008. Ecohydrological responses on water diversion in the lower reaches of the Tarim River, China. Water Resources Research 44, W08422, doi:10.1029/2007WR006186.

[539]      Tao, H., M. Gemmer, Y. Song, and T. Jiang (2008), Ecohydrological responses on water diversion in the lower reaches of the Tarim River, China, Water Resour. Res., 44, W08422, doi:10.1029/2007WR006186.

[540]      Thevs, N., 2007. Ecology, Spatial Distribution, and Utilization of the Tugai Vegetation at the Middle Reaches of the Tarim River, Xinjiang/China. Cuvillier Verlag Goettingen, 180pp.

[541]      Thoma G, Esser N, Sonntag C, Weiss W, Rudolph J, and Leveque P. 1979. New technique of in-situ soil-moisture sampling for environmental isotope analysis applied at Pilat sand dune near Bordeaus. Pp 753-766. In: Isot. Hydrol. Proc. Int. Symp. Neuherberg, Germany. 19-23 June 1978. Vol. 2, IAEA, Vienna.

[542]      Thorburn PJ, Rose CW, Shaw RJ, Yule DF (1990) Interpretation of solute profile dynamics in irrigated soils. 1. Mass balance approaches. Irrigation Sci 11:199-207

[543]      Thorburn, P. J., C. W. Rose, R. J. Shaw, and D. F. Yule (1990), Interpretation of solute profile dynamics in irrigated soils. 1. Mass balance approaches, Irrigation Sci., 11, 199-207, doi: 10.1007/BF00190534.

[544]      Thorburn, P.J., Rose, C.W., Shaw, R.J., Yule, D.F., 1990. Interpretation of solute profile dynamics in irrigated soils. 1. Mass balance approaches. Irrigation Sci. 11, 199-207.

[545]      Thorburn, P.J., Rose, C.W., Shaw, R.J., Yule, D.F., 1990. Interpretation of solute profile dynamics in irrigated soils. 1. Mass balance approaches. Irrigation Sci. 11, 199-207.

[546]      Tian, L., T. Yao, K. MacClune, J. W. C. White, A. Schilla, B. Vaughn, R. Vachon, and K. Ichiyanagi. 2007. Stable isotopic variations in west China: A consideration of moisture sources, Journal of Geophysical Research, 112, D10112, doi: 10.1029/2006JD007718.

[547]      Tian, L., Yao, T., MacClune, K., White, J. W. C., Schilla, A., Vaughn, B., Vachon, R. and Ichiyanagi, K. 2007. Stable isotopic variations in west China: A consideration of moisture sources. J. Geophys. Res., 112, D10112, doi:10.1029/2006JD007718.

[548]      Trenberth, K. E. (1999), Atmospheric moisture recycling: role of advection and local precipitation, J. Clim., 12, 1368-1381.

[549]      Trenberth, K. E., A. Dai, R. M. Rasmussen and D. B. Parsons (2003), The changing character of precipitation, Bull. Amer. Meteor. Soc., 84, 1207-1217.

[550]      Tsujimura, M., A. Numaguti, L. Tian, S. Hashimoto, A. Sugimoto and M. Nakawo (2001), Behaviour of subsurface water revealed by stable isotope and tensiometric observation in the Tibetan Plateau, J. Meteorol. Soc. Japan, 79(1B), 599-605.

[551]      Tyler SW, Chapman JB, Conrad SH, Hammermeister DP, Blout DO, Miller JJ, Sully MJ, Ginanni JM (1996) Soil-Water Flux in the Southern Great Basin, United States: Temporal and Spatial Variations over the Last 120,000 Years. Water Resour Res 32:1481-1499

[552]      Tyler, S.W., and G.R. Walker. 1994. Root zone effects on tracer migration in arid zones. Soil Sci. Soc. Am. J. 58:25-31.

[553]     Tyler, S.W., Chapman, J.B., Conrad, S.H., Hammermeister, D.P., Blout, D.O., Miller, J.J., Sully, M.J., Ginanni, J.M., 1996. Soil-Water Flux in the Southern Great Basin, United States: Temporal and Spatial Variations over the Last 120,000 Years. Water Resour. Res. 32, 1481-1499.

[554]      Tyler, S.W., Chapman, J.B., Conrad, S.H., Hammermeister, D.P., Blout, D.O., 1996. Soil water flux in the southern great basin, United States: temporal and spatial variations over the last 120, 000 years. Water Resources Research, 32(6): 1481-1499.

[555]      Van De Pol RM, Wierenga PJ, Nielsen DR, 1977, Solute Movement in a Field Soil. Soil Sci. Soc. Am. J. 41: 10-13.

[556]      van Genuchten, M.Th. and Sudicky.E.A. 1999. Recent advances in vadose zone flow and transport modeling. p. 155–193. In M.B. Parlange and J.W. Hopmans (ed.) Vadose zone hydrology: Cutting across disciplines. Oxford Univ. Press, New York.

[557]      Vance, C. P., G. H. Heichel, D. K. Barnes, J. W. Bryan, and L. E. Johnson (1979), Nitrogen Fixation, Nodule Development, and Vegetative Regrowth of Alfalfa (Medicago sativa L.) following Harvest, Plant Physiol., 64, 1-8.

[558]      Vance, C.P., Heichel, G.H., Barnes, D.K., Bryan, J.W., Johnson, L.E., 1979. Nitrogen Fixation, Nodule Development, and Vegetative Regrowth of Alfalfa (Medicago sativa L.) following Harvest. Plant Physiol. 64, 1-8.

[559]      Vance, C.P., Heichel, G.H., Barnes, D.K., Bryan, J.W., Johnson, L.E., 1979. Nitrogen Fixation, Nodule Development, and Vegetative Regrowth of Alfalfa (Medicago sativa L.) following Harvest. Plant Physiol. 64, 1-8.

[560]      Vidal, J. 2002. Blue gold: Earth’s liquid asset [EB/OL]. The Guardian, 22/08/2002. URL http://www.guardian.co.uk/worldsummit2002/earth/story/0,,777661,00.html

[561]      Vörösmarty CJ, McIntyre PB, Gessner MO, et al. 2010. Global threats to human water security and river biodiversity. Nature. 467: 555-561.

[562]      Vörösmarty, C. J., P. Green, J. Salisbury, and R. B. Lammers. 2000. Global water resources: Vulnerability from climate change and population growth. Science, 289, 284– 288.

[563]      Vörösmarty, C., D. Lettenmaier, C. Leveque, M. Meybeck, C. Pahl-Wostl, J. Alcamo, W. Cosgrove, H. Grassl, H. Hoff, P. Kabat, F. Lansigan, R. Lawford, R. Naiman (2004), Humans Transforming the Global Water System, Eos Transactions AGU, 85(48), doi:10.1029/2004EO480001.

[564]      Wada, Y., L. P. H. van Beek, C. M. van Kempen, J. W. T. M. Reckman, S. Vasak, and M. F. P. Bierkens (2010), Global depletion of groundwater resources, Geophys. Res. Lett., 37, L20402, doi:10.1029/2010GL044571.

[565]      Walker GR, Jolly ID, and Cook PG (1991) A new chloride leaching approach to the estimation of diffuse recharge following a change in land use. J Hydrol 128:49-67

[566]      Walker GR, Zhang L, Ellis TW. Hatton TJ, Petheram C. 2002. Estimating impacts of changed land use on recharge: review of modelling and other approaches appropriate for management of dryland salinity. Hydrogeology Journal, 10:68–90

[567]      Walker, G. R., I. D. Jolly, and P. G. Cook (1991), A new chloride leaching approach to the estimation of diffuse recharge following a change in land use, J. Hydrol., 128, 49-67, doi:10.1016/0022-1694(91)90131-z.

[568]      Walker, G.R., Jolly, I.D., Cook, P.G., 1991. A new chloride leaching approach to the estimation of diffuse recharge following a change in land use. J. Hydrol. 128, 49-67.

[569]      Walker, G.R., Jolly, I.D., Cook, P.G., 1991. A new chloride leaching approach to the estimation of diffuse recharge following a change in land use. J. Hydrol. 128, 49-67.

[570]      Walvoord MA, Plummer MA, Phillips FM, et al. 2002. Deep arid system hydrodynamics, 1, Equilibrium states and response times in thick desert vadose zones. Water Resources Research, 38 (12), 2001WR000824.

[571]      Wang B, Jin M, Nimmo JR, Yang L, Wang W(2008) Estimating groundwater recharge in Hebei Plain, China under varying land use practices using tritium and bromide tracers. Journal of Hydrology 356(1-2): 209-222.

[572]      Wang BG, Jin MG, Nimmo JR, Yang L, Wang WF (2008) Estimating groundwater recharge in Hebei Plain, China under varying land use practices using tritium and bromide tracers. J Hydrol 356:209-222

[573]      Wang J, Pang Z (2011) Comparison Between Geological Disposal of Carbon Dioxide and Radioactive Waste in China, inF.L. Toth (ed.), Geological Disposal of Carbon Dioxide and Radioactive Waste: A Comparative Assessment. Advances in Global Change Research 44, DOI 10.1007/978-90-481-8712-6_17, International Atomic Energy Agency.

[574]      Wang R, Fan Z, Zhang H, Chen Y, Ma Y. 2002. Remote sensing analysis of desert vegetation and it s landscape changes: the case in middle reaches of Tarim River Basin, Xinjang, China. Science in China (Series D) 45 (supp 1): 54-58.

[575]      Wang R, Fan Z, Zhang H, Chen Y, Ma Y. 2002. Remote sensing analysis of desert vegetation and it s landscape changes: the case in middle reaches of Tarim River Basin, Xinjang, China. Science in China (Series D) 45 (supp 1): 54-58.

[576]      Wang SQ, Song XF, Wang QX, Xiao GQ, Liu CM and Liu JR(2009) Shallow groundwater dynamics in North China Plain. Journal of Geographical Sciences 19(2): 175-188.

[577]      Wang, B.G., 2008. Research on estimating methods of groundwater recharge: a case study in North China Plain. Doctoral Thesis, China University of Geosciences, Wuhan, China, 121pp.

[578]      Wang, B.G., Jin, M.G., Nimmo, J.R., Yang, L., Wang, W.F., 2008. Estimating groundwater recharge in Hebei Plain, China under varying land use practices using tritium and bromide tracers. J. Hydrol. 356, 209-222.

[579]      Wang, B.G., Jin, M.G., Nimmo, J.R., Yang, L., Wang, W.F., 2008. Estimating groundwater recharge in Hebei Plain, China under varying land use practices using tritium and bromide tracers. J. Hydrol. 356, 209-222.

[580]      Wang, G., Cheng, G., 2000. The characteristics of water resources and the changes of the hydrological process and environment in the arid zone of northwest China. Environmental Geology 39, 783-790.

[581]      Wang, R. (2007), Study on interaction among precipitation, soil water and groundwatert in a loess-plain based on environmental isotopes (in Chinese). Doctoral Thesis. Institute of Soil and Water Conservation, Chinese Academy of Sciences and Ministry of Water Resources, Xi’an, China.

[582]      Wang, X.P., Berndtsson, R., Li, X.R., Kang, E.S., 2004. Water balance change for a re-vegetated xerophyte shrub area. Hydrolog. Sci. J. 49, 283-295.

[583]     Wang, Y., Liu, R.Q., 2005. Groundwater resources in Dongzhiyuan and its sustainable utilization (in Chinese). Water Resour. Protect. 21(1), 64-66.

[584]      Wattenbach M, M. Zebisch, F. Hattermann, P. Gottschalk, H. Goemann, P. Kreins, F. Badeck , P. Lasch, F. Suckow, and F. Wechsung (2007), Hydrological impact assessment of afforestation and change in tree-species composition-A regional case study for the Federal State of Brandenburg (Germany), J. Hydrol., 346, 1-17, doi:10.1016/j.jhydrol.2007.08.005.

[585]      Wei K, Lin R, Wang Z, Zhou X. 1980. Distribution of tritium in natural water in china. Chinese Science Bulletin 25(4): 337-337.

[586]      Wei K, Lin R, Wang Z, Zhou X.1980. The tritium distribution in the natural water in the China. Chinese Science Bulletin 25(10): 467-470.

[587]      Wheater, H.S., Tompkins, M.A., van Leeuwen, M. 2000. Uncertainty in groundwater flow and transport modeling - a stochastic analysis of well protection zones. Hydrological Processes, 14: 2019-2029.

[588]      Whelan, B.R. and Barrow, N.J., 1980. A study of a method for displacing soil solution by centrifuging with an immiscible liquid. J. Environ. Qual., 19: 315-319.

[589]      Wierenga PJ, van Genuchten MT, Boyle FW, 1975, Transfer of boron and tritiated water through sandstone. J. Environ. Qual. 4:83-87.

[590]      Williams DG, Scott RL, Huxman TE, Goodrich DC and Lin G (2006) Sensitivity of riparian ecosystems in arid and semiarid environments to moisture pulses, Hydrol. Process. 20, 3191-3205

[591]      Williams, D.G., Scott, R.L., Huxman, T.E., Goodrich, D.C., Lin, G., 2006. Sensitivity of riparian ecosystems in arid and semiarid environments to moisture pulses. Hydrological Processes 20, 3191-3205.

[592]      Wood W.W. and Sanford W.E.1995. Chemical and Isotopic Method for Quantifying Ground-Water Recharge in a Regional, Semiarid Environment. Ground Water, 33: 458–486.

[593]      Wood, W.W., Rainwater, K.A. and Thompson, D.B., 1997. Quantifying macropore recharge: examples from a semi-arid area. Ground Water, 35: 1096–1106.

[594]      Wu C, Xu QH, Zhang XQ, Ma YH (1996) Paleochannels on the North China Plain: types and distributions. Geomorphology 18: 5–14

[595]      Wu J, Zhang R, Yang J. 1996. Analysis of rainfall-recharge relationships. Journal of Hydrology 177: 143-160.

[596]      XETCAS. 1965. Xinjiang Expedition Team of the Chinese Academy of Sciences, Institute of Geology of the Chinese Academy of Sciences, Xinjiang Branch of the Chinese Academy of Sciences. Groundwater in Xinjiang. Science Press, Beijing, China. 25-32

[597]      XETCAS-Xinjiang Expedition Team of the Chinese Academy of Sciences, 1965. Groundwater in Xinjiang. Science Press, Beijing, 25-32.

[598]      XGMWRC-Xinjiang Government and Ministry of Water Resources of China, 2002. The Program of Recent Tarim River Basin Comprehensive Management. China Water & Power Press, Beijing, 93pp.

[599]      Xu H, Song Y, Wang Q, Ai Mti. 2004. The effect of groundwater level on vegetation in the middle and lower reaches of the Tarim River, Xinjiang, China. Acta Phytoecologica Sinica 28 (3) 400-405.

[600]      Xu H, Song Y, Wang Q, Ai Mti. 2004. The effect of groundwater level on vegetation in the middle and lower reaches of the Tarim River, Xinjiang, China. Acta Phytoecologica Sinica 28 (3) 400-405.

[601]      Xu H, Ye M, Song Y, et al., ,The Natural Vegetation Responses to the Groundwater Change Resulting from Ecological Water Conveyances to the Lower Tarim River Environ Monit Assess (2007) 131:37–48

[602]      Xu H, Zhou A, Xiao G, Zhi B, Ye H. 2000. Arid trend and eco-environmental effect of water-salt imbalance in Northwest China. Earth Science-Journal of China University of Geosciences 25(5): 499-504.

[603]      Xu H, Zhou A, Xiao G, Zhi B, Ye H. 2000. Arid trend and eco-environmental effect of water-salt imbalance in Northwest China. Earth Science-Journal of China University of Geosciences 25(5): 499-504.

[604]      Xu QH, Wu C, Yang XL, Zhang NJ (1996) Paleochannels on the North China Plain:    relationships between their development and tectonics. Geomorphology 18:27–35

[605]      Xu Z, Li Y, Tang Y, Han G (2009) Chemical and strontium isotope characterization of rainwater at an urban site in Loess Plateau, Northwest China. Atmos Res 94:481-490

[606]      Xu, H., Ye, M., Song, Y., Chen, Y., 2007. The natural vegetation responses to the groundwater change resulting from ecological water conveyances to the Lower Tarim River. Environmental Monitoring and Assessment 131, 37-48.

[607]      Xu, Z. F., Y. S. Li, Y. Tang, and G. L. Han (2009), Chemical and strontium isotope characterization of rainwater at an urban site in Loess Plateau, Northwest China, Atmos. Res., 94, 481-490, doi:10.1016/j.atmosres.2009.07.005.

[608]      Xu, Z., Li, Y., Tang, Y., Han, G., 2009. Chemical and strontium isotope characterization of rainwater at an urban site in Loess Plateau, Northwest China. Atmospheric Research 94, 481-490.

[609]      Xu, Z.F., Li, Y.S., Tang, Y., Han, G.L., 2009. Chemical and strontium isotope characterization of rainwater at an urban site in Loess Plateau, Northwest China. Atmos. Res. 94, 481-490.

[610]      Xu, Z.F., Li, Y.S., Tang, Y., Han, G.L., 2009. Chemical and strontium isotope characterization of rainwater at an urban site in Loess Plateau, Northwest China. Atmos. Res. 94, 481-490.

[611]       Yang WZ, Yu CZ (1992) Regional control and evaluation in the Loess Plateau of China. Science Press, Beijing, 424 pp (in Chinese)

[612]      Yang, W. Z., and C. Z. Yu (1992), Regional control and evaluation in the Loess Plateau of China (in Chinese), Science Press, Beijing, 424 pp.

[613]      Yang, W.Z., Yu, C.Z., 1992. Regional control and evaluation in the Loess Plateau of China (in Chinese). Science Press, Beijing, 424pp.

[614]      Yuan, J.Z., Min, Q.W. 2001. Water: the fundamentality for reconstruction of ecosystem in Northwest China (in Chinese). J. Nat. Resour. 16, 511-515.

[615]      Yurtsever Y and Gat JR. 1981. Atmospheric waters. In Stable isotope hydrology: deuterium and oxygen-18 in the water cycle Gat JR and Gonfiantini R (eds), Technical report series 210. IAEA, Vienna, pp 103-142.

[616]      Zhang J, Takahashi K, Wushiki H, Yabuki S, Xiong J, Masuda A. 1995. Water geochemistry of the rivers around the Taklimakan Desert (NW China): Crustal weathering and evaporation process in arid land. Chemical Geology 119: 225-237.

[617]      Zhang J, Takahashi K, Wushiki H, Yabuki S, Xiong J, Masuda A. 1995. Water geochemistry of the rivers around the Taklimakan Desert (NW China): Crustal weathering and evaporation process in arid land. Chemical Geology 119: 225-237.

[618]      Zhang SC, Lv XB (2000) Study on the nitrate-N pollution in the groundwater vertical profile in Tangshan agricultural area. China Environmental Science 20(3):254-257

[619]      Zhang WL, Tian ZX, Zhang N, Li XQ (1996) Nitrate pollution of groundwater in northern China. Agriculture Ecosystems & Environment 59: 223-231

[620]      Zhang XP, Zhang L, Zhao J, Rustomji P, Hairsine P (2008) Responses of streamflow to changes in climate and land use/cover in the Loess Plateau, China. Water Resour Res 44, W00A07, doi:10.1029/2007WR006711

[621]      Zhang Y, Chen Y, Zhang D. 2003 Plant communities and their interrelations with environmental factors in the middle reachers of the Tarim River. Acta Geographica Sinica 58 (1): 109-118.

[622]      Zhang Y, Chen Y, Zhang D. 2003. Plant communities and their interrelations with environmental factors in the middle reachers of the Tarim River. Acta Geographica Sinica 58 (1): 109-118.

[623]      Zhang Y-K, Schilling KE. 2006. Increasing streamflow and baseflow in Mississippi River since the 1940 s: Effect of land use change. Journal of Hydrology 324: 412-422.

[624]      Zhang YM., Hu CS, Mao RZ, Dong WX (2003) Nitrogen, phosphorus and potassium cycling and balance in farmland ecosystem at the piedmont of Taihang. Chinese Journal of Applied Ecology 14(11): 1863-1867

[625]      Zhang ZH, Shen ZL, Xue YQ, et al. (2000) Evolution of groundwater environment of the Northern China Great Plain. Geological Publishing House. Beijing, China. pp281

[626]      Zhang, J., Takahashi, K., Wushiki, H., Yabuki, S., Xiong, J., Masuda, A., 1995. Water geochemistry of the rivers around the Taklimakan Desert (NW China): Crustal weathering and evaporation process in arid land. Chemical Geology 119, 225-237.

[627]      Zhang, L., Dawes, W.R., Walker, G.R., 2001. Response of mean annual evapotranspiration to vegetation changes at catchment scale. Water Resour. Res. 37, 701-708.

[628]      Zhang, L., Dawes, W.R., Walker, G.R., 2001. Response of mean annual evapotranspiration to vegetation changes at catchment scale. Water Resour. Res. 37, 701-708.

[629]      Zhang, L., W. R. Dawes, and G. R. Walker (2001), Response of mean annual evapotranspiration to vegetation changes at catchment scale, Water Resour. Res., 37, 701-708, doi:10.1029/2000WR900325.

[630]      Zhang, X., L. Zhang, J. Zhao, P. Rustomji, and P. Hairsine (2008), Responses of streamflow to changes in climate and land use/cover in the Loess Plateau, China, Water Resour. Res., 44, W00A07, doi:10.1029/2007WR006711.

[631]      Zhang, X.P., Zhang, L., Zhao, J., Rustomji, P., Hairsine, P., 2008. Responses of streamflow to changes in climate and land use/cover in the Loess Plateau, China. Water Resour. Res. 44, W00A07, doi:10.1029/2007WR006711.

[632]      Zhang, X.P., Zhang, L., Zhao, J., Rustomji, P., Hairsine, P., 2008. Responses of streamflow to changes in climate and land use/cover in the Loess Plateau, China. Water Resour. Res. 44, W00A07, doi:10.1029/2007WR006711.

[633]      Zhang, Z. G., F. Z. Liu, H. P. Zhang, and E. K. Liu (1990), Study of soil water movement and recharge rate of rainfall infiltration in aeration zone of loess by measuring natural tritium (in Chinese), Hydrogeol. Eng. Geol., 3, 5-7.

[634]      Zhang, Z., Shen, Z, Xue, Y., 2000. Evolution of groundwater environment of the Northern China Great Plain. Geological Publishing House, Beijing, 281pp.

[635]      Zhang, Z.G., Liu, F.Z., Zhang, H.P., Liu, E.K., 1990. Study of soil water movement and recharge rate of rainfall infiltration in aeration zone of loess by measuring natural tritium. Hydrogeol. Eng. Geol. 3, 5-7.

[636]      Zhang. H., and K.M. Hiscock (2010), Modelling the impact of forest cover on groundwater resources: A case study of the Sherwood Sandstone aquifer in the East Midlands, UK, J. Hydrol., 392,136-149, doi: 10.1016/j.jhydrol.2010.08.002.

[637]      Zhao C, Feng Z, Chen G. 2004. Soil water balance simulation of alfalfa (Medicago sativa L.) in the semiarid Chinese Loess Plateau. Agricultural Water Management, 69: 101–114.

[638]      Zhao J, Li W, Peng J, Liu C, Dupre B, Gaillardet J, Hu J, Yi Z, Geng D. 2007. Origin and environmental significance of major elements and Sr isotope ratios in rivers originating from Tanggula Mountains. Geoscience 21(4): 591-599.

[639]      Zhao J, Li W, Peng J, Liu C, Dupre B, Gaillardet J, Hu J, Yi Z, Geng D. 2007. Origin and environmental significance of major elements and Sr isotope ratios in rivers originating from Tanggula mountains, Geoscience 21(4): 591-599.

[640]      Zhao J, Qin D, Nagashima H, Lei J, Wei W. (2007) Analysis of mechanism of the salinization process and the salinity variation in Boston lake, Advances in Water Science, 18(4): 475-482.

[641]      Zhao SH (2010) Sustainable utilization of groundwater resource at Tangshan. Haihe Water Resources 04:8+30

[642]      Zhao, C., Z. Feng, and G. Chen (2004), Soil water balance simulation of alfalfa (Medicago sativa L.) in the semiarid Chinese Loess Plateau, Agr. Water Manage., 69, 101-114, doi:10.1016/j.agwat.2004.04.006.

[643]      Zhou H, Xiao D, Zhou K. 2006. Corridor effect of the spatial changes of landscape patterns in arid area: a case study of the river corridor area in the middles and lower reaches of Tarim River. Chinese Science Bulletin 21(supp 1): 82-91.

[644]      Zhou H, Xiao D, Zhou K. 2006. Corridor effect of the spatial changes of landscape patterns in arid area: a case study of the river corridor area in the middles and lower reaches of Tarim River. Chinese Science Bulletin 21(supp 1): 82-91.

[645]      Zhu B and Yang X. 2007. The ion chemistry of surface and ground waters in the Taklimakan Desert of Tarim Basin, western China. Chinese Science Bulletin, 52: 2123-2129

[646]     Zhu Z D, Chen Z P, Wu Z, et al. Studies on Aeolian Landforms in the Taklamakan Desert (in Chinese). Beijing: Science Press, 1981. pp110

[647]      Zhu Z D, Chen Z P, Wu Z. 1981. Studies on Aeolian Landforms in the Taklamakan Desert. Science Press, Beijing, China. pp110.

[648]      Zhu, B., Yang, X., 2007. The ion chemistry of surface and ground waters in the Taklimakan Desert of Tarim Basin, western China. Chinese Science Bulletin 52, 2123-2129.

[649]      Zhu, X.M., 1989. Soil and Agriculture in the Loess Plateau (in Chinese). Agricultural Science Press, Beijing, 496pp.

[650]      Zhu, Z., Chen, Z., Wu, Z., 1981. Studies on Aeolian Landforms in the Taklimakan Desert. Science Press, Beijing, 110pp.

[651]      Zimmermann U, Munnich KO, Roether W (1967) Downward movement of soil moisture traced by means of hydrogen isotopes. Geophys Monogr-Am Geophys Union 11:28-36

[652]      Zimmermann U, Münnich KO, Roether W. 1967. Downward movement of soil moisture traced by means of hydrogen isotopes. In Isotope Techniques in the Hydrologic Cycle Geophysical Monograph Series 11, American Geophysical Union.28-36.

[653]      Zimmermann, U., K. O. Munnich, and W. Roether (1967), Downward movement of soil moisture traced by means of hydrogen isotopes, Geophys. Monogr. Am. Geophys. Union, 11, 28-36.

[654]      Zimmermann, U., Munnich, K.O., Roether, W., 1967. Downward movement of soil moisture traced by means of hydrogen isotopes. Geophys. Monogr. Am. Geophys. Union 11, 28-36.

[655]      Zimmermann, U., Munnich, K.O., Roether, W., 1967. Downward movement of soil moisture traced by means of hydrogen isotopes. Geophys. Monogr. Am. Geophys. Union 11, 28-36.

[656]      Zongyu C, Jixiang Q, Jianming X, X. Jiaming, Y. Hao and N. Yunju (2003) Paleoclimatic interpretation of the past 30 ka from isotopic studies of the deep confined aquifer of the North China plain. Applied Geochemistry 18: 997-1009

[657]      Zongyu C, Ying W, Jun L, Wen W (2010) Groundwater changes of selected groundwater systems in northern China in recent fifty years. Quaternary Sciences 30:115-126

[658]      Zuber, A., On the environmental isotope method for determining the water balance components of some lakes. Journal of Hydrology, 1983. 61(4): p. 409-427.

[659]      阿克苏水文水资源勘测局 (2008) 台兰河地表水水资源研究报告.

[660]      阿里木•吐尔逊, 徐卫亚. 塔里木河下游生态输水河道两侧区域地下水运动规律研究[J]. 干旱区地理, 2003, 26(2): 129135.

[661]      包为民, 胡海英, 瞿思敏,王涛, 稳定同位素方法在湖泊水量平衡研究中的应用. 人民黄河, 2007. 29(008): p. 29-30.

[662]      曹满益. 2003. 董志塬地下水资源及其可持续利用. 甘肃水利水电技术, 39(4): 285-286.

[663]      陈军 (2008) 温宿县台兰河冲洪积扇高氟地下水形成机理探讨. 河南水利与南水北调. 2: 59-61.

[664]      陈亚宁, 陈亚鹏, 李卫红, . 塔里木河下游胡杨脯氨酸累积对地下水位变化的响应. 科学通报,2003489):959-961

[665]      陈亚宁,李卫红,陈亚鹏, 等。新疆塔里木河下游断流河道输水与生态恢复. . 2007, 27(2): 0538-0545.

[666]      陈宗宇, 毕二升, 聂振龙, . 2001. 包气带剖面中古水文-气候信息的初步研究. 地球学报, 22(4): 335-339.

[667]      程积民, 万惠娥, 王静,. 2004. 黄土丘陵区沙打旺草地土壤水分过耗与恢复. 生态学报, 24(12): 2979-2983.

[668]      程其畴. 塔里木河研究. 南京: 河海大学出版社. 1993.

[669]      邓铭江, 裴建生, 王智 (2006) 干旱区内陆河流域地貌单元特征及地下水储水构造. 水利学报. 37 (11): 1360-1366.

[670]      邓铭江. 塔里木河下游生态输水与植被恢复响应研究. 博士论文, 南京: 河海大学, 2007, pp163.

[671]      董新光, 邓铭江. 新疆地下水资源. 乌鲁木齐: 新疆科学技术出版社, 2005, pp257.

[672]      董新光, 姜卉芳, 邓铭江, . 内陆盆地的盐分布与平衡分析研究. 水科学进展, 2005, 16(5): 638- 642.

[673]      独仲德, 赵英杰, 程金茹. 1997. 黄土非饱和渗流试验研究. 水文地质工程地质, (2): 50-52.

[674]      樊自立, 马英杰, 张宏, . 塔里木河流域生态地下水位及其合理深度确定. 干旱区地理, 2004, 27 (1): 8-13.

[675]      樊自立, 马英杰, 张惠, . 塔里木河水质盐化及改善途径. 水科学进展, 2002, 13(6): 719-725.

[676]      郝爱兵, 李文鹏, 梁志强. 利用TDS和δ18O确定溶滤和蒸发作用对内陆干旱区地下水咸化贡献的一种方法. 水文地质工程地质. 2000, (1): 4-6.

[677]      贺新春 , 邵东国 , 刘武艺, . 农田排水资源化利用的研究进展与展望, 农业工程学报, 200622(3).

[678]      贺秀斌, 唐克丽. 1999. 黄土高原植被建造的潜势分析.中国水土保持.204:31-35

[679]      侯光才, 张茂省. 2008. 鄂尔多斯盆地地下水勘查研究. 北京: 地质出版社, pp 555.

[680]      黄明斌, 杨新民, 李玉山. 2001. 黄土区渭北旱塬苹果基地对区域水循环的影响. 地理学报. 56(1): 7-13.

[681]      姜瑞琪. 1992. 运用灰色关联度法探讨黄土潜水补给周期. 陕西地质科技情报, 17(2):21-25.

[682]      焦鹏程, 王弭力, 刘成林. 新疆罗布泊盐湖卤水的氚同位素特征及其地质意义. 核技术, 2004, 27(9): 710-715.

[683]      孔彦龙, 庞忠和. 高寒流域同位素径流分割研究进展. 冰川冻土, 2010, 32(3): 619-625.

[684]      李文鹏, 郝爱兵, 刘振英, 万力, 郭建强. 塔里木盆地地下水开发远景区研究. 北京: 地质出版社, 2000, pp149.

[685]      李文鹏, 郝爱兵, 郑跃军, . 塔里木盆地区域地下水环境同位素特征及其意义. 地学前缘, 2006, 13(1): 191-198.

[686]      李玉山. 1983. 黄土区土壤水分循环特征及其对陆地水分循环的影响. 生态学报. 3(2): 91-101.

[687]      李玉山. 2001. 黄土高原森林植被对陆地水循环影响的研究. 自然资源学报, 16(5): 427-432.

[688]      李云峰. 1994. 黄土渗透性与空隙性关系的研究. 北京: 地质出版社. pp 86.

[689]      梁一民, 李代琼, 从心海. 1990. 吴旗沙打旺草地土壤水分及生产力特征的研究. 水土保持通报, 10(6): 113-118.

[690]      刘昌明, 钟骏襄. 1978. 黄土高原森林对年径流影响的初步分析. 地理学报. 33(2): 112-127.

[691]      刘潮海. 中国冰川目录Ⅱ:阿尔泰山区 [M]. 科学出版社, 北京, 1982: 1-18.

[692]      刘成林, 王弭力, 焦鹏程. 新疆罗布泊盐湖氢氧锶硫同位素地球化学及钾矿成矿物质来源, 矿床地质, 1999, 18(3): 268-275.

[693]      刘丹, 刘世青, 徐则民. 应用环境同位素方法研究塔里木河下游浅层地下水. 成都理工学院学报. 1997, 24(3): 89-95.

[694]      刘东生. 1965. 中国的黄土堆积. 科学出版社. pp 244.

[695]      刘东生. 1966. 黄土的物质成分和结构. 科学出版社. pp 132.

[696]      刘东生. 1985. 黄土与环境. 科学出版社. pp 497.

[697]      刘东生. 2009. 黄土与干旱环境. 安徽科学技术出版社. pp537.

[698]      刘进达. 近十年来中国大气降水氚浓度变化趋势研究. 勘察科学技术. 2001, 4: 11-19.

[699]      刘君, 陈宗宇, 张兆吉, 费宇红, 张凤娥, 陈京生, 王昭. 2009. 利用环境示踪剂估算滹沱河冲洪积扇地下水天然补给. 地质科技情报. 28(6): 114-118.

[700]      刘俊民. 1987. 陇西黄土高原地区地下水的分布及其特征. 干旱地区农业研究, (3): 56-63.

[701]      刘群, 陈郁华, 李银彩,. 中国中新生代陆源碎屑-化学岩型盐类沉积. 北京: 科学技术出版社, 1987: 97-131.

[702]      刘鑫. 2010. 基于氢氧同位素的黄土高原丘陵沟壑区浅层地下水补给机制研究-以岔巴沟流域为例. 博士学位论文. 北京:中国科学院地理科学与资源研究所.

[703]      马金珠, 李相虎, 黄天明. 石羊河流域水化学演化与地下水补给特征. 资源科学. 2005, 27(3): 117-122.

[704]      穆兴民, 徐学选, 王文龙, . 2003. 黄土高原人工林对区域深层土壤水环境的影响. 土壤学报, 40(2): 210-217.

[705]      庞忠和 (2011) 地热水的同位素,见:顾慰祖和庞忠和(主编),同位素水文学. 科学出版社,北京,出版中.

[706]      庞忠和, 郭永海, 苏锐, 秦大军, 许冰, 2007, 北山花岗岩裂隙地下水循环属性试验研究, 岩石力学与工程学报. 26(S2): 3954-3958.

[707]      庞忠和,杨丰田,袁利娟,李义曼 (2011) 新疆塔县盆地地热显示特征与热储温度预测. 地质论评, 57: 86-88.

[708]      庞忠和. 2004. 同位素水文学领域的国际科研合作与发展援助. 水文地质工程地质. (2): 114-116.

[709]      钱正英, 沈国舫, 潘家铮. 西北地区水资源配置生态环境建设和可持续发展战略研究. 北京: 科学出版社. 2004.

[710]      曲焕林. 1990. 黄土层地下水研究. 水文地质与工程地质. 9-10.

[711]       曲焕林. 1991. 中国干旱半干旱地区地下水资源评价. 北京:科学出版社. pp 457.

[712]     沈照理,朱宛华,钟佐燊. 水文地球化学. 北京: 地质出版社. 1993

[713]      宋献方, 刘鑫, 夏军, . 2009. 基于氢氧同位素的岔巴沟流域地表水-地下水转化关系研究. 应用基础与工程科学学报, 17(1): 8-20.

[714]      宋郁东, 樊自立, 雷志栋等. 中国塔里木河水资源与生态问题研究. 乌鲁木齐: 新疆人民出版社. 2000.

[715]      唐亦川, 代革联, 王晓明. 1997. 渭北西部黄土台塬区黄土地下水补给来源的初步分析. 西北地质, 18(4): 85-89.

[716]      陶然, 徐志刚, 徐晋涛. 2004. 退耕还林,粮食政策与可持续发展.中国社会科学,第4.

[717]      田华, 王文科, 曹玉清, . 2007. 关中盆地地下水氚年龄的计算. 西安科技大学学报, 27(3): 382-385.

[718]     田立德, 姚檀栋, 沈永平, 杨梅学,叶柏生, 青藏高原那曲河流域降水及河流水体中氧稳定同位素研究. 水科学进展, 2002. 13(2).

[719]      田立德,Atusi, N., 青藏高原中部水蒸发过程中的氧稳定同位素变化. 冰川冻土, 2000. 22(002): p. 159-164.

[720]      万军伟, 刘存富, 晁念英, . 2003. 同位素水文学理论与实践. 武汉: 中国地质大学出版社.

[721]      万素梅, 贾志宽, 韩清芳, 杨宝. 2008. 黄土高原半湿润区苜蓿草地土壤干层形成及水分恢复. 生态学报. 28(3): 1045-1051.

[722]      汪丙国, 靳孟贵, 王文峰, . 2006. 氯离子示踪法在河北平原地下水垂向入渗补给量评价中的应用. 节水灌溉, (3): 16-20.

[723]      汪丙国. 2008. 地下水补给评价方法研究-以华北平原为例. 中国地质大学(武汉),博士论文. pp121.

[724]      王大纯, 张人权, 史毅虹, . 1985. 水文地质学基础. 地质出版社, 北京. pp 160.

[725]      王佳武. 1993. “形状贴近度”分析法在黄土塬区潜水补给时间估算中的应用[J]. 陕西地质科技情报. 18(1&2): 25-28.

[726]      王弭力, 刘成林, 焦鹏程. 罗布泊盐湖钾盐矿床调查科研进展与开发现状. 地质论评, 2006, 52(6): 757-764.

[727]      王让会, 樊自立. 干旱区内陆河流域生态脆弱性评价——以新疆塔里木河流域为例. 生态学杂志. 2001, 20 (3) : 63- 68.

[728]      王锐. 2007. 基于环境同位素黄土塬区降水-土壤水-地下水转化关系研究. 博士学位论文. 西安:中国科学院教育部水土保持与生态环境研究中心.

[729]      王志明, 郭择德, 李明香. 2000. 半干旱地区包气带浅部黄土中水分运移特征. 干旱区研究. 17(2): 1-7.

[730]      王志强, 刘宝元, 刘刚, 张永萱. 2009. 黄土丘陵区人工林草植被耗水深度研究. 中国科学 D :地球科学. 39(9): 1297-1303.

[731]      温小虎,仵彦卿,苏建平等.额济纳盆地地下水盐化特征及机理分析. 中国沙漠. 2006, 26(5): 836-841.

[732]      吴钦孝, 杨文治. 1998. 黄土高原植被建设与持续发展. 科学出版社, 北京, pp 289.

[733]      武选民, 史生胜, 黎志恒等. 2002. 西北黑河下游额济纳盆地地下水系统研究. 水文地质工程地质, (1/2): 16~20; 30~33.

[734]      郗静. 2006. 陕北黄土高原退耕还林与生态环境建设研究. 西北大学. 硕士学位论文.

[735]      新疆水利水勘测设计院. 塔里木河下游生态保持规划报告. 2000

[736]      新疆维吾尔自治区人民政府和中华人民共和国水利部 (2002) 塔里木河流域近期综合治理规划报告. 北京: 中国水利水电出版社, pp93.

[737]      徐海量, 宋郁东, 王强, . 塔里木河中下游地区不同地下水位对植被的影响植物. 生态学报, 2004, 28(3): 400-405.

[738]      徐恒力,周爱国,肖国强, . 西北地区干旱化趋势及水盐失衡的生态环境效应. 地球科学, 2000,25 (5) :499-503.

[739]      许兆义, 赵英杰, 陈家军. 1993. 包气带水流中黄土裂隙作用机制研究. 长春地质学院学报, 23(3): 326-329.

[740]      薛根良. 1995. 黄土地下水的补给与赋存形式探讨. 水文地质与工程地质, (1): 38-39.

[741]      阎太白. 1981. 洛川黄土地区区域地下水资源及计算方法探讨. 水文地质工程地质. (5): 43-46.

[742]      阎太白. 1986. 黄土潜水补给周期的探讨. 水文地质工程地质, (3): 42-44.

[743]      俞淞生, 武清华. 1991. 山西太原东山区盆地边缘涧河谷地和侯家梁黄土垣的地下水年龄测定. 核技术, 14(12): 756-761.

[744]      袁嘉祖, 闵庆文. 2001. 水是西北地区生态系统重建的根本. 自然资源学报. 16(6): 511-515.

[745]      张光辉, 费宇红, 申建梅, 杨丽芝. 2007. 降水补给地下水过程中包气带变化对入渗的影响. 水利学报. 38(5): 611-617.

[746]      张国威,周聿超, 新疆内陆干旱区蒸发的计算和分析. 水科学进展, 1992. 3(003): p. 226-232.

[747]      张之淦, 刘芳珍, 张洪平, . 1990. 应用环境氚研究黄土包气带水分运移及入渗补给量. 水文地质工程地质, (3): 5-7, 54.

[748]      张宗祜, 沈照理, 薛禹群等. 华北平原地下水环境演化. 北京: 地质出版社,2000

[749]      章新平,姚檀栋, 水体蒸发过程中稳定同位素分馏的模拟. 冰川冻土, 2003. 25(001): p. 65-71.

[750]      赵景波, 周旗, 侯甬坚. 2003. 黄土高原土壤干层对生态环境建设的影响. 陕西师范大学学报-自然科学版, 31(4): 93-97.

[751]      赵英杰, 许兆义. 1994. 黄土包气带中垂直裂隙导水机制研究. 辐射防护通讯, 14(4): 85-87.

[752]      中国地下水科学战略研究小组. 2009. 中国地下水科学的机遇与挑战. 科学出版社, 北京, pp 199.

[753]      中国科学院学部. 新楼兰工程——塔里木河下游及罗布泊地区生态重建与跨越式发展设想. 地球科学进展, 2003, 18(6): 819-830.

[754]      中国科学院学部重大咨询项目 (2007) “新疆地下水地表水联合开发利用”专题“新疆阿克苏地区台兰河流域以地下水库调蓄为主的流域开发模式实例专题”项目报告书.

[755]      中国水利网,塔里木河第七次应急生态输水流量小流速慢. http://www.chinawater.com.cn/ 2005513.

[756]      中科院黄土高原综合科考队(LPISST. 1990. 黄土高原地区地下水资源合理利用. 北京: 学苑出版社. pp 93.

[757]      朱芮芮, 刘昌明, 郑红星. 2009. 无定河流域地下水更新时间估算. 地理学报. 64(3): 315-322.

[758]      朱震达, 陈冶平, 吴正, . 塔克拉玛干沙漠风沙地貌研究. 北京: 科学出版社, 19811-4.