127
Views
0
CrossRef citations to date
0
Altmetric
Reviews

Quantitative evaluation of the groundwater environment: A case study in Tongliao, China

, , , &
Pages 2367-2389 | Received 05 Mar 2020, Accepted 23 Apr 2020, Published online: 19 May 2020

References

  • Adimalla N, Li P. 2019. Occurrence, health risks and geochemical mechanisms of fluoride and nitrate in groundwater of the rock-dominant semi-arid region, Telangana State, India. Hum Ecol Risk Assess. 25(1–2):81–103. doi:10.1080/10807039.2018.1480353
  • Adimalla N, Li P, Qian H. 2019. Evaluation of groundwater contamination for fluoride and nitrate in semi-arid region of Nirmal Province, South India: a special emphasis on human health risk assessment (HHRA). Hum Ecol Risk Assess. 25(5):1107–1124. doi:10.1080/10807039.2018.1460579
  • Adimalla N, Wu J. 2019. Groundwater quality and associated health risks in a semi-arid region of south India: implication to sustainable groundwater management. Hum Ecol Risk Assess. 25(1–2):191–216. doi:10.1080/10807039.2018.1546550
  • Aravinthasamy P, Karunanidhi D, Subramani T, Srinivasamoorthy K, Anand B. 2019. Geochemical evaluation of fluoride contamination in groundwater from Shanmuganadhi River basin, South India: implication on human health. Environ Geochem Health. doi:10.1007/s10653-019-00452-x
  • Ashwin S, Arbind K, Jyoti P, Aparna D, Abhay K, Manish K. 2019. Prediction of arsenic vulnerable zones in the groundwater environment of a rapidly urbanizing setup, Guwahati, India. Geochemistry. doi:10.1016/j.chemer.2019.125590
  • Bai J, Liu G. 1996. Application of DSRSR in water quality assessment. Railway Labor Safety Healthy Environ Protect. 23 (2):133–135 (in Chinese).
  • Bo R, P, Jinshan P, Christofer L. 2005. Tafel slopes used in monitoring of copper corrosion in a Bentonite groundwater environment. Corros Sci. 47(12):3267–3279. doi:10.1016/j.corsci.2005.07.007
  • Chen J, Qian H, Gao Y, Wang H, Zhang M. 2020. Insights into hydrological and hydrochemical processes in response to water replenishment for lakes in arid regions. J Hydrol. 581. doi:10.1016/j.jhydrol.2019.124386
  • Chen J, Wu H, Qian H, Gao Y. 2017. Assessing nitrate and fluoride contaminants in drinking water and their health risk of rural residents living in a semiarid region of northwest China. Expo Health. 9(3):183–195. doi:10.1007/s12403-016-0231-9
  • Chen J, Wu H, Qian H, Li X. 2018. Challenges and prospects of sustainable groundwater management in an agricultural plain along the Silk Road Economic Belt, north-west China. Int J Water Resour Dev. 34(3):354–368. doi:10.1080/07900627.2016.1238348
  • China Geological Survey. 2012. Handbook of hydrogeology. 2nd ed. Beijing: Geology Publishing House.
  • He S, Wu J. 2019a. Hydrogeochemical characteristics, groundwater quality and health risks from hexavalent chromium and nitrate in groundwater of Huanhe Formation in Wuqi County, northwest China. Expo Health. 11(2):125–137. doi:10.1007/s12403-018-0289-7
  • He S, Wu J. 2019b. Relationships of groundwater quality and associated health risks with land use/land cover patterns: a case study in a loess area, northwest China. Hum Ecol Risk Assess. 25(1–2):354–373. doi:10.1080/10807039.2019.1570463
  • He X, Wu J, He S. 2019a. Hydrochemical characteristics and quality evaluation of groundwater in terms of health risks in Luohe aquifer in Wuqi County of the Chinese Loess Plateau, northwest China. Hum Ecol Risk Assess. 25(1–2):32–51. doi:10.1080/10807039.2018.1531693
  • He S, Li P, Wu J, Elumalai V, Adimalla N. 2019b. Groundwater quality under land use/land cover changes: a temporal study from 2005 to 2015 in Xi’an, northwest China. Hum Ecol Risk Assess. doi:10.1080/10807039.2019.1684186
  • He X, Li P, Ji Y, Wang Y, Su Z, Elumalai V. 2020a. Groundwater arsenic and fluoride and associated arsenicosis and fluorosis in China: occurrence, distribution and management. Expo Health. doi:10.1007/s12403-020-00347-8
  • He X, Li P, Wu J, Wei M, Ren X, W D. 2020b. Poor groundwater quality and high potential health risks in the Datong Basin, northern China: research from published data. Environ Geochem Health. doi:10.1007/s10653-020-00520-7
  • Jin X, Zeng B, Liu J, Xiang S, Chen Z. 2014. Discussion on key issues of numerical simulation in groundwater environment impact assessment. Water Resour Power. 32(05):23–28 (in Chinese).
  • Karunanidhi D, Aravinthasamy P, Subramani T, Priyadarsi DR, Srinivasamoorthy K. 2019a. Risk of fluoride-rich groundwater on human health: remediation through managed aquifer recharge in a hard rock terrain, South India. Nat Resour Res. doi:10.1007/s11053-019-09592-4
  • Karunanidhi D, Aravinthasamy P, Subramani T, Wu J, Srinivasamoorthy K. 2019b. Potential health risk assessment for fluoride and nitrate contamination in hard rock aquifers of Shanmuganadhi River basin, South India. Hum Ecol Risk Assess. 25(1–2):250–270. doi:10.1080/10807039.2019.1568859
  • Kathrin E, Tillmann L. 2008. An optimised PCR/T-RFLP fingerprinting approach for the investigation of protistan Communities in groundwater environments. J Microbiol Methods. 75(2):262–268. doi:10.1016/j.mimet.2008.06.012
  • Kubier A, Hamer K, Pichler T. 2020. Cadmium background levels in groundwater in an area dominated by agriculture in Northwestern Germany. Integr Environ Assess Manag. 16(1):103–113. doi:10.1002/ieam.4198
  • Kumar M, Ramanathan AL, Rao MS, Kumar B. 2006. Identification and evaluation of hydro-geochemical processes in the groundwater environment of Delhi. Environ Geol. 50(7):1025–1039. doi:10.1007/s00254-006-0275-4
  • Li P. 2016. Groundwater quality in western China: challenges and paths forward for groundwater quality research in western China. Expo Health. 8(3):305–310. doi:10.1007/s12403-016-0210-1
  • Li P, He X, Guo W. 2019a. Spatial groundwater quality and potential health risks due to nitrate ingestion through drinking water: a case study in Yan’an City on the Loess Plateau of northwest China. Hum Ecol Risk Assess. 25(1–2):11–31. doi:10.1080/10807039.2018.1553612
  • Li P, He S, He X, Tian R. 2018a. Seasonal hydrochemical characterization and groundwater quality delineation based on matter element extension analysis in a paper wastewater irrigation area, northwest China. Expo Health. 10(4):241–258. doi:10.1007/s12403-17-0258-6
  • Li P, He X, Li Y, Xiang G. 2019b. Occurrence and health implication of fluoride in groundwater of Loess aquifer in the Chinese Loess Plateau: a case study of Tongchuan, northwest China. Expo Health. 11(2):95–107. doi:10.1007/s12403-018-0278-x
  • Li P, Li X, Meng X, Li M, Zhang Y. 2016. Appraising groundwater quality and health risks from contamination in a semiarid region of northwest China. Expo Health. 8(3):361–379. doi:10.1007/s12403-016-0205-y
  • Li P, Tian R, Liu R. 2019c. Solute geochemistry and multivariate analysis of water quality in the Guohua phosphorite mine, Guizhou Province. Expo Health. 11(2):81–94. doi:10.1007/s12403-018-0277-y
  • Li P, Tian R, Xue C, Wu J. 2017. Progress, opportunities and key fields for groundwater quality research under the impacts of human activities in China with a special focus on western China. Environ Sci Pollut Res. 24(15):13224–13234. doi:10.1007/s11356-017-8753-7
  • Li P, Wu J. 2019. Drinking water quality and public health. Expo Health. 11(2):73–79. doi:10.1007/s12403-019-00299-8
  • Li P, Wu J, Tian R, He S, He X, Xue C, Zhang K. 2018b. Geochemistry, hydraulic connectivity and quality appraisal of multilayered groundwater in the Hongdunzi coal mine, Northwest China. Mine Water Environ. 37(2):222–237. doi:10.1007/s10230-017-0507-8
  • Liang X. 2015. Study on water quantity and water quality evaluation trend of groundwater in Songyuan city. Jilin University, Jinlin (in Chinese).
  • Lv X, Liu J, Han Z, Zhou B, Zhu L, Chen X. 2020. Chemical evolution of groundwater in the Tacheng basin of Xinjiang in the process of urbanization. Environ Sci. 41(03):1197–1206 (in Chinese). doi:10.13227/j.hjkx.201908192
  • Ministry of Natural Resources of the People’s Republic of China. 2017. Code of groundwater monitoring network operation and maintenance (DZ/T0307-2017). Ministry of Natural Resources of the People’s Republic of China, Beijing (in Chinese).
  • Pei X. 2018. Study on the environmental impact of coal mining on groundwater. Shanxi Chem Ind. 38(06):204–205 + 211 (in Chinese). doi:10.16525/j.cnki.cn14-1109/tq.2018.06.72
  • Peng C, He J, Liao L, Zhang Z. 2017. Research on the influence degree of human activities on groundwater by the method of geochemistry: a case study from Liujiang basin. Earth Sci Front. 24(1):321–331 (in Chinese). doi:10.13745/j.esf.2017.01.022
  • Qian H, Jin J, Xi W. 2012a. Application of osculating value method based on AHP in water quality evaluations. J North China Inst Water Conserv Hydroelectr Power. 33(1):123–125 (in Chinese). doi:10.19760/j.ncwu.zk.2012.01.035
  • Qian H, Li P, Howard KWF, Yang C, Zhang X. 2012b. Assessment of groundwater vulnerability in the Yinchuan Plain, Northwest China using OREADIC. Environ Monit Assess. 184(6):3613–3628. doi:10.1007/s10661-011-2211-7
  • Rajmohan N, Elango L. 2003. Identification and evolution of hydro-geochemical processes in the groundwater environment in an area of the Palar and Cheyyar River Basins, Southern India. Environ Geol. 1(1):1–61.1012-5. doi:10.1007/s00254-004
  • Shen M, Gao D. 2009. The analysis of five relationships and their cause in the course of water resource management. Ecol Environ. 04:174–176 (in Chinese).
  • State General Administration of the People’s Republic of China for Quality Supervision and Inspection and Quarantine (AQSIQ), Standardization Administration of the People’s Republic of China (SAC). 2017a. Guidelines for water-draw and utilization assessment on construction projects (GB/T35580-2017). AQSIQ, SAC, Beijing (in Chinese).
  • State General Administration of the People’s Republic of China for Quality Supervision and Inspection and Quarantine (AQSIQ), Standardization Administration of the People’s Republic of China (SAC). 2017b. Guidelines for the assessment of groundwater overexploitation zones (GB/T34968-2017). AQSIQ, SAC, Beijing (in Chinese).
  • State General Administration of the People’s Republic of China for Quality Supervision and Inspection and Quarantine (AQSIQ), Standardization Administration of the People’s Republic of China (SAC). 2017c. Standard for groundwater quality (GB/T14848-2017). AQSIQ, SAC, Beijing (in Chinese).
  • Su F, Wu J, He S. 2019. Set pair analysis-Markov chain model for groundwater quality assessment and prediction: a case study of Xi’an City, China. Hum Ecol Risk Assess. 25(1–2):158–175. doi:10.1080/10807039.2019.1568860
  • Tian R, Wu J. 2019. Groundwater quality appraisal by improved set pair analysis with game theory weightage and health risk estimation of contaminants for Xuecha drinking water source in a loess area in Northwest China. Hum Ecol Risk Assess. 25(1–2):132–157. doi:10.1080/10807039.2019.1573035
  • Wang D, Wu J, Wang Y, Ji Y. 2019. Finding high-quality groundwater resources to reduce the hydatidosis incidence in the Shiqu County of Sichuan Province, China: analysis, assessment, and management. Expo Health. doi:10.1007/s12403-019-00314-y
  • Wei S. 2009. Evaluating the water quality of Honghu by the method of Distance Standard Rank Sum Ratio. J Hubei Univ (Nat Sci). 31(01):92–94 (in Chinese).
  • Wu J, Li P, Lu H. 2010. Application of osculating value method based on entropy weight in water quality assessment of Dongsheng coalfield area in Inner Mongolia. Environ Sci Manage. 35(06):178–181 (in Chinese).
  • Wu J, Wang L, Wang S, Tian R, Xue C, Feng W, Li Y. 2017. Spatiotemporal variation of groundwater quality in an arid area experiencing long-term paper wastewater irrigation, northwest China. Environ Earth Sci. 76(13):460. doi:10.1007/s12665-017-6787-2
  • Wu J, Zhang Y, Zhou H. 2020. Groundwater chemistry and groundwater quality index incorporating health risk weighting in Dingbian county, Ordos Basin of Northwest China. Geochemistry. doi:10.1016/j.chemer.2020.125607
  • Wu J, Zhou H, He S, Zhang Y. 2019. Comprehensive understanding of groundwater quality for domestic and agricultural purposes in terms of health risks in a coal mine area of the Ordos basin, north of the Chinese loess plateau. Environ Earth Sci. 78(15):446. doi:10.1007/s12665-019-8471-1
  • Wu Y, Su Y, Cheng L. 2015. Energy conservation and emission evaluation for enterprises based on entropy weight coefficient method and expert Scoring method. Elect Energy Manage Technol. 16:63–68. (in Chinese). doi:10.16628/j.cnki.2095-8188.2015.16.004
  • Yang D, Tang Y, Tang D. 2018. Application of fuzzy matter-element method based on entropy weight in evaluation of agricultural water use efficiency. Water Sav Irrig. 10:64–67 (in Chinese).
  • Yang H, Liu J, Liang H. 2009. Change characteristics of climate and water resources in west Liaohe river plain. Ying Yong Sheng Tai Xue Bao. 20 (1):84–90 (in Chinese). doi:10.13287/j.1001-9332.2009.0008
  • Yuan H, Yang S, Ding X, Yang X, Wang B. 2020. Evaluation and source analysis of chemical ion characteristics of groundwater in Wulate irrigation. Water Saving Irrigation. [accessed February 21, 2020]. http://kns.cnki.net/kcms/detail/42.1420.tv.20200220.1805.014.html. (in Chinese).
  • Zhang B, Song J. 2009. Solving water shortage-an important environmental task in China’s 12th five-year plan. Protect Environ. 15:42–44 (in Chinese). doi:10.14026/j.cnki.0253-9705.2009.15.021
  • Zhang W, Yang Z. 2002. Assessment on bearing capacity of groundwater environment based on indicator system. Acta Sci Circumst. 22(4):541–544( in Chinese). doi:10.13671/j.hjkxxb.2002.04.026
  • Zhang X, Yu H. 2017. Analysis of water resource and its development and utilization in Tongliao. Inner Mongolia Water Resour. 4:35–36 (in Chinese).
  • Zhang Y. 2019. Study on key issues of groundwater development and utilization in water environmental impact assessment. Energy Energy Conserv. 11:76–77 + 92 (in Chinese). doi:10.16643/j.cnki.14-1360/td.2019.11.030
  • Zhang Y, Wu J, Xu B. 2018. Human health risk assessment of groundwater nitrogen pollution in Jinghui canal irrigation area of the loess region, northwest China. Environ Earth Sci. 77(7):273. doi:10.1007/s12665-018-7456-9
  • Zhao W, Lin J, Wang S, Liu J, Chen Z, Kou W. 2013. Influence of human activities on groundwater environment based on coefficient variation method. Environ Sci. 34(4):1277–1283 (in Chinese). doi:10.13227/j.hjkx.2013.04.040
  • Zhu Y, Zhang S, Zhao S, Sun B, Liu Y, Zhang Y. 2017. Impacts of climate change and human activities on changes of groundwater level. Trans Chin Soc Agric Mach. 48(09):199–205 (in Chinese). doi:10.6041/j.issn.1000-1298.2017.09.025
  • Zuo R, Chen M, Li X. 2019. Environmental risk assessment of groundwater based on comprehensive effects of ‘ecological groundwater level-quality-source area. Res Environ Sci. 32(8):1275–1283 (in Chinese). doi:10.13198/j.issn.1001-6929.2019.01.19

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.