Stable isotope evidences on sources and mechanisms of groundwater recharge in Hohhot basin, China
详细信息    查看全文
  • 作者:Jun Liu ; Zongyu Chen ; Yilong Zhang ; Zhenghong Li ; Lin Zhang…
  • 关键词:Recharge sources ; Stable isotopes ; Groundwater recharge
  • 刊名:Environmental Earth Sciences
  • 出版年:2016
  • 出版时间:March 2016
  • 年:2016
  • 卷:75
  • 期:5
  • 全文大小:1,032 KB
  • 参考文献:Bhattacharya SK, Gupta SK, Krishnamurthy RV (1985) Oxygen and hydrogen isotope ratios in groundwaters and rivers from India. Proc Indian Acad Sci (Earth Planet Sci) 94:283–295
    Blasch KW, Bryson JR (2007) Distinguishing sources of ground water recharge by using δ2H and δ18O. Ground Water 45:294–308CrossRef
    Brunner N, Starkl M, Sakthivel P, Elango L, Amirthalingam S, Pratap CE, Thirunavukkarasu M, Parimalarenganayaki S (2014) Policy preferences about managed aquifer recharge for securing sustainable water supply to Chennai City, India. Water 6:3739–3757CrossRef
    Chapman TG, Malone RW (2002) Comparison of models for estimation of groundwater recharge, using data from a deep weighing lysimeter. Math Comput Simul 59(1–3):3–17CrossRef
    Chen ZY, Wan L, Nie ZL, Shen JM, Chen JS (2006) Identification of groundwater recharge in the Heihe Basin using environmental isotopes. Hydrogeol Eng Geol 6:9–14 (in Chinese)
    Clark ID, Fritz P (1997) Environmental isotopes in hydrogeology. Lewis Publishers, Boca Raton
    Coplen TB, Herczeg AH, Barnes C (2000) Isotope engineering-using stable isotopes of the water molecule to solve practical problems. In Environmental tracers in sub surface hydrology
    Craig H (1961) Isotopic variation in meteoric waters. Science 133:1702–1703CrossRef
    Custodio E (2002) Aquifer overexploitation: what does it mean? Hydrogeol J 10:254–277CrossRef
    Dangaard W (1964) Stable isotopes in precipitation. Tellus 16:436–468CrossRef
    Darby BJ, Davis GA, Yadong Z (2001) Structural evolution of the southwestern Daqing Shan, Yinshan belt, Inner Mongolia, China. In: Hendrix MS, Davis GA (eds) Paleozoic and mesozoic tectonic evolution of Central Asia, 194. Geological Society of America, Boulder, pp 199–213
    Davis GA, Darby BJ, Yadong Z, Spell TL (2002) Geometric and temporal evolution of an extensional detachment fault, Hohhot metamorphic core complex, Inner Mongolia, China. Geology 30:1003–1006CrossRef
    Gonfiantini R (1986) Environmental isotopes in lake studies. In: Fritz P, Fontes JC (eds) Handbook of environmental isotope geochemistry. Elsevier, New York, pp 113–168
    Grindley J (1969) The calculation of evaporation and soil moisture deficit over specified catchment area, Hydrological Memorandum 28. Meteorological Office, Bracknell 10
    Hough MN, Jones RJA (1998) The United Kingdom Meteorological Office rainfall and evaporation calculation system: MORECS version 2.0—an overview. Hydrol Earth Syst Sci 1:227–239CrossRef
    IAEA (2011) Using isotopes effectively to support comprehensive groundwater management—NTR 2011 Supplement. 55th IAEA General Conference Documents
    Krishnamurthy RV, Bhattacharya SK (1991) Stable oxygen and hydrogen isotope ratios in shallow groundwater from India and a study of the role of evapotranspiration in the Indian monsoon. In: Taylor HP, O’Nell JR, Kaplan IR (Eds.), stable isotope Geochemistry. A Tribute to Samuel Epstein, Special Publication NO. 3. The Geochemical Society, San Antonio, TX, 187–194
    Kumar D (2007) Groundwater Management in India: Physical, Institutional and Policy Alternatives, New Delhi: Sage Publications
    Kyle WB, Jeannie RB (2007) Distinguishing sources of groundwater recharge by using δ2H and δ18O. GROUN WATER 45(3):294–308CrossRef
    Lee KS, Lee CB (1999) Oxygen and hydrogen isotopic composition of precipitation and river waters in South Korea. J Geol Soc Korea 35:73–84
    Li F, Pan G, Tang C, Zhang Q, Yu J (2008) Recharge source and hydrogeochemical evolution of shallow groundwater in a complex alluvial fan system, southwest of North China Plain. Environ Geol 55:1109–1122CrossRef
    Liu CF, Wang HC (1984) The basis of Environmental isotope in hydrogeology. Hydrological Geology Department-Wuhan College of Geology, 82. (in Chinese)
    Liu J, Chen ZY, Wei W, Zhang YL, Li ZH, Liu FL, Guo HL (2014) Using chlorofluorocarbons (CFCs) and tritium (3H) to estimate groundwater age and flow velocity in Hohhot Basin, China. Hydrol Process 28:1372–1382CrossRef
    Ma J, Huang T, Ding Zh, Edmunds WM (2007) Environmental isotopes as the indicators of the groundwater recharge in the South Badain Jaran Desert. Adv Earth Sci 22(9):922–930 (in Chinese)
    Mandal AK, Zhang J, Asai K (2011) Stable isotopic and geochemical data for inferring sources of recharge and groundwater flow on the volcanic island of Rishiri, Japan. Appl Geochem 26:1741–1751CrossRef
    Mukherjee A, Fryar AE, Rowe HD (2007) Regional-scale stable isotopic signatures of recharge and deep groundwater in the arsenic affected areas of West Bengal, India. J Hydrol 334:151–161CrossRef
    Mukherjee A, Bhattacharya P, Shi F, Fryar AE, Mukherjee AB, Xie ZM, Bundschuh J (2009) Chemical evolution in the high arsenic groundwater of the Huhhot basin (Inner Mongolia, PR China) and its difference from the western Bengal basin (India). Appl Geochem 24(10):1835–1851CrossRef
    Onodera S, Kitaoka K, Hayashi M, Shindo S, Kusakabe M (1995) Evaluation of the groundwater recharge process in a semiarid region of Tanzania, using δD and δ18O. Application of Tracers in Arid Zone Hydrology (Proceedings of the Vienna Symposium August 1994). The International Association of Hydrological Sciences (IAHS) Publications 232:383–391
    Palmer PC, Gannett MW, Hinkle SR (2007) Isotopic characterization of three groundwater recharge sources and inferences for selected aquifers in the upper Klamath Basin of Oregon and California, USA. J Hydrol 336:17–29CrossRef
    Shao YS (1989) Environmental isotope geochemistry of groundwater in Hohhot Basin, inner Mongolia. Geotech Investig Surv 4:41–43 (in Chinese)
    Shao JL, Xu YX, Cui YL, Yuan CM, Wang LH (2006) Study on groundwater change on the Aberrance condition in Hubao Plain, Inner Mongolia, China. Geoscience 20(3):480–485 (in Chinese)
    Shi F (2004) Arsenic in groundwater in Huhhot alluvial basin in Inner Mongolia, People’s Republic of China. Unpublished Licenciate thesis, Royal Institute of Technology, Stockholm
    Smedley PL, Zhang M, Zhang G, Luo Z (2003) Mobilisation of arsenic and other trace elements in fluviolacustrine aquifers of the Huhhot Basin, Inner Mongolia. Appl Geochem 18(9):1453–1477CrossRef
    Vandenschrick G, Wesemael BV, Frot E, Pulido A, Molina L, Stievenard M (2002) Using stable isotope analysis ([delta]D—[delta]18O) to characterize the regional hydrology of the Sierra de Gador, south east Spain. J Hydrol 265:43–55CrossRef
    Yang LP, Jiang ZJ, Zhao YT, Zha ES (2009) Recharge on changes and prediction of trend of the groundwater regime in Hohhot. Hydrogeol Eng Geol 4:46–49 (in Chinese)
    Yeh HF, Chen JF, Lee CH (2004) Application of a water budget to evaluate rainfall recharge and slope stablility. J Chin Inst Environ Eng 14:1–10
    Yeh HF, Lee CH, Hsu KC, Chang PH, Wang CH (2009) Using stable isotopes for assessing the hydrologic characteristics and sources of groundwater recharge. J Environ Eng Manag 19(4):185–191
    Yeh HF, Lee CH, Hsu KC (2011) Oxygen and hydrogen isotopes for the characteristics of groundwater recharge: a case study from the Chih-Pen Creek basin, Taiwan. Environ Earth Sci 62:393–402CrossRef
    Yuan RQ, Song XF, Zhang YH, Han DM, Wang SQ, Tang CY (2011) Using major ions and stable isotopes to characterize recharge regime of a fault-influenced aquifer in Beiyishui River Watershed, North China Plain. J Hydrol 405:512–521CrossRef
    Zhang GH, Nie ZL, Xie RB, Chen ZY, Cheng XX, Shen JM, Wang JZ (2005) Isotopic characteristics of groundwater and its renewal in the plain area of western Gansu. Geol Bull China 24(2):149–155 (in Chinese)
  • 作者单位:Jun Liu (1)
    Zongyu Chen (1)
    Yilong Zhang (1)
    Zhenghong Li (1)
    Lin Zhang (1)
    Fuliang Liu (1)

    1. Institute of Hydrogeology and Environmental Geology, Chinese Academy of Geological Sciences, Shijiazhuang, Hebei, China
  • 刊物类别:Earth and Environmental Science
  • 刊物主题:None Assigned
  • 出版者:Springer Berlin Heidelberg
  • ISSN:1866-6299
文摘
It is extremely important for water resources management to understand the mechanisms of recharge to aquifer. Monitoring changes in stable isotopes (δ 2H and δ 18O) can be used to learn some information on groundwater recharge processes. In this study, the stable isotopes from precipitation and groundwater samples were employed to trace the recharge processes. In Hohhot area (inner Mongolia), the recharge of shallow groundwater is mainly due to precipitation from the eastern mountain area in eastern and southeastern parts and from the northern mountain area in the northern and southwestern parts. The recharge mechanisms for shallow groundwater are the infiltration of surface water in the piedmont area and lateral flow recharge. The source of deep groundwater in confined aquifer is probably from precipitation in high-altitude area or cold weather conditions, which perhaps have the same recharge source as shallow groundwater in the northern and southwestern parts. Compared with the previous data from Shao’s (Geotech Investig Surv 4:41–43, 1989) study, the variation of groundwater recharge for nearly 30 years in the study area was inferred: the recharge zone is the eastern and northern mountain areas. The recharge way to shallow groundwater has changed into lateral recharge from surface runoff in the mountain area and from surface runoff and vertical rainfall infiltration in the piedmont area. But the recharge mechanism for deep groundwater has a similar origin with the one for northern shallow groundwater, namely the lateral recharge.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700