References
- M. Tarki, A. Enneili, L. Dassi, An appraisal of natural fluorine
contamination of paleogroundwater in Tozeur oases, southern
Tunisia, with emphasis on the anthropogenic impact,
Appl. Geochem., 120 (2020) 1–16.
- K. Kim, G.Y. Jeong, Factors influencing natural occurrence of
fluoride-rich groundwaters: a case study in the southeastern
part of the Korean Peninsula, Chemosphere, 58 (2005)
1399–1408.
- D.L. Ozsvath, Fluoride and environmental health: a review,
Rev. Environ. Sci. Biotechnol., 8 (2009) 59–79.
- H. Guo, Q. Guo, Y. Jia, Chemical characteristics and formation
process of high arsenic groundwater in different regions
of China, Earth Sci. Environ., 35 (2013) 83–96.
- Ministry of Health, PRC, Standards for Drinking Water
Quality (GB5749-2006), 2006 (in Chinese).
- National Standardization Administration, PRC, Standard for
Groundwater Quality (GB/T14848-2017), 2017 (in Chinese).
- J. Lin, G. Xu, Fluorine chemical characteristics of water and
shallow groundwater hydrogeochemical genesis, China
Rural Water Hydropower, 4 (2010) 33–35 (in Chinese).
- J. Cheng, W. Zhou, Z. Gan, Characteristic and causes of the
fluorine content of groundwater in Poyang Lake, China
Rural Water Hydropower, 1 (2013) 31–34 (in Chinese).
- Y. Liu, M. Jin, B. Ma, J. Wang, Distribution and migration
mechanism of fluoride in groundwater in the Manas River
Basin, Northwest China, Hydrogeol. J., 26 (2018) 1527–1546.
- N. Adimalla, Groundwater quality for drinking and irrigation
purposes and potential health risks assessment: a case study
from semi‑arid region of South India, Exposure Health,
11 (2019) 109–123.
- G. Cui, Y. Lu, C. Zheng, Z. Liu, J. Sai, Relationship between
soil salinization and groundwater hydration in Yaoba Oasis,
Northwest China, Water, 175 (2019) 1–19.
- J. Zhao, J. Zhou, Y. Gao, Q. Li, Assessment of groundwater
quality and pollution in the plain area of northern slope of
Tianshan Mountains in Xinjiang, S. N. Water Transfers Water
Sci. Tecnol., 26 (2012) 63–66 (in Chinese).
- L. Hong, A preliminary study on diseases and formation
environment of water with high fluoride and arsenic in
Chepaizi area, northern Kuitun, Xinjiang, Xinjiang Environ.
Prot., 4 (1983) 22–28 (in Chinese).
- Q. Li, J. Zhou, Y. Zeng, Effects of nitrogens on the migration and
enrichment of arsenic in the groundwater in the plain area of
Kuitun River and Manas River basin, Environ. Chem., 36 (2017)
2227–2234 (in Chinese).
- H. Yuan, Q. Li, H. Tao, Groundwater arsenic enrichment factors
of Kuitun river basin, Xinjiang, Environ. Chem., 39 (2020) 524–
530 (in Chinese).
- X. Yuan, Y. Su, On the arsenic content rate in the hair and nail
of the residents due to the high arsenic groundwater pollution
in Kuitun irrigated area, Xinjiang, J. Saf. Environ., 17 (2017)
1519–1523 (in Chinese).
- M. Mu, W. Wang, D. Du, Countermeasures about the
development and utilization of the groundwater resources in
Kuitun River valley in Xinjiang, J. Arid Land Resour. Environ.,
21 (2007) 15–20 (in Chinese).
- J. Li, Y. Luo, Y. Yu, Preliminary study of combined groundwater
pollution by arsenic-fluoride in Kuitun reclamation area of
Xinjiang and its causes, Environ. Prot. Sci., 42 (2016) 124–128
(in Chinese).
- Y. Luo, J. Li, P. Jiang, Hydrochemical characteristics and
the formations for groundwater in Kuitun, Xinjiang, J. Arid
Land Resour. Environ., 31 (2017) 116–121 (in Chinese).
- Q. Li, H. Tao, M.·Aihemaiti, Influences of sediment
characteristics and land utilization on the behavior of
groundwater arsenic (As) in the Kuitun River basin, Desal.
Water Treat., 189 (2020) 338–348.
- X. Zhou, Analysis on distribution characteristics and drinking
water safety countermeasures of high fluoride water in Kuitun
River Basin, Jilin Agric., 10 (2015) 125–126 (in Chinese).
- D. Xu, Analysis and Prediction of Dry Water Runoff
Characteristics in Kuitun River Basin, North Slope of Tianshan
Mountain, Xinjiang Normal University, Xinjiang, 2009
(in Chinese).
- W. Gao, Study on Runoff Variation Law and Prediction
Model of Kuitun River Basin in Xinjiang Province, Northwest
Agriculture and Forestry University, 2009 (in Chinese).
- Ministry of Ecology and Environment, PRC, Technical
Specifications for Groundwater Environmental Monitoring
(HL/T164-2004), 2004 (in Chinese).
- G. Wang, G. Cheng, The distributing regularity of fluorine
and its environmental characteristics in arid area of north
west China, Sci. Geog. Sin., 2 (2000) 153–159 (in Chinese).
- Institute of Geology, Chinese Academy of Sciences, Xinjiang
Branch, Xinjiang Groundwater, Science Press, Beijing, 1965
(in Chinese).
- L. Shao, S. Yang, W. Wang, X. Feng, Distribution regularity of
fluorine in shallow groundwater in unsaturated soils of Kuitun
River Basin, Xinjiang, J. Earth Sci. Environ., 4 (2006) 64–68
(in Chinese).
- L. Li, J. Zhou, W. Qi, Distribution and formation process of
fluorine in groundwater in oasis area of Hotan river basin,
J. Arid Land Resour. Environ., 33 (2019) 112–118 (in Chinese).
- W. Zhang, X. Fu, F. Zhang, The relationship between the high
fluorine content of groundwater and the pH value, water
temperature and the ratio of (Na++K+)/Ca2+: a case study of
Yongcheng mine area, Geol. Resour., 2 (2004) 109–111+95
(in Chinese).
- G. Zhang, P. Jiang, Y. Yu, Fluorine pollution of soil in Kuitun
reclamation area of Xinjiang, J. Xinjiang Agric. Univ., 1 (2008)
57–59 (in Chinese).
- L. Lv, Distribution Characteristics and Evolution Mechanism
of Fluoride in Cangzhou Groundwater, Liaoning Technical
University, 2011 (in Chinese).
- C. Liang, C. Su, Y. Wu, Analysis on distribution characteristics
and formation process of high-fluorine groundwater in
Datong Basin, Bull. Geol. Sci. Technol., 33 (2014) 154–159
(in Chinese).
- H. Schoeler, Qualitative evaluation of groundwater resource:
methods and techniques of groundwater investigation an
development, Water Res., 33 (1967) 44–52.
- R. Mao, H. Guo, Y. Jia, Distribution characteristics and
genesis of fluoride groundwater in the Hetao Basin, Inner
Mongolia, Earth Sci. Front., 23 (2016) 260–268 (in Chinese).