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Hydrology & Hydrogeology

Origin and stability of pit lake water in Baiyinhua, Inner Mongolia, based on hydrochemistry and stable isotopes

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Pages 174-190 | Received 08 Jun 2023, Accepted 07 Dec 2023, Published online: 25 Jan 2024

References

  • Chen J, Mo L, Zhang Z, et al. Evaluation of the ecological restoration of a coal mine dump by exploring the characteristics of microbial communities. Appl Soil Ecol. 2020;147:103430. doi:10.1016/j.apsoil.2019.103430
  • Chen W, Li W, Yang Z, et al. Analysis of mining-induced variation of the water table and potential benefits for ecological vegetation: a case study of Jinjitan coal mine in Yushenfu mining area, China. Hydrogeol J. 2021;29(4):1629–1645. doi:10.1007/s10040-021-02325-z
  • Ye S, Zhang J, Pan L, et al. Ecological environmental cost accounting of mining area based on the green mine: A case from a mining area in the North China Plain. Metal Mine. 2019;48(4):168–174.
  • Kong L, Jiang C, Zheng L, et al. Characters of hydrochemistry and their influenced factors of different waters in the Linhuan coal mining subsidence area of Huaibei City. J Lake Sci. 2017;29(5):1158–1167. doi:10.18307/2017.0513
  • Ewusi A, Sunkari ED, Seidu J, et al. Hydrogeochemical characteristics, sources and human health risk assessment of heavy metal dispersion in the mine pit water–surface water–groundwater system in the largest manganese mine in Ghana. Environ Technol Innov. 2022;26:102312. doi:10.1016/j.eti.2022.102312
  • Chen L, Yin X, Chen Y. Hydrogen and oxygen stable isotope tracing of deep groundwater circulation under mining-induced disturbance in mining district. Geogr Geoinf Sci. 2013;29(2):85–90.
  • Jiao Y, Wang G, Fan Y, et al. Distinguishing water sources of the abandoned mine in Fengfeng mining area by using hydrochemistry and hydrogen, oxygen isotopes. Quat Sci. 2014;34(5):1054–1061.
  • Zhang L, Qin X, Liu J, et al. Characters of hydrogen and oxygen stable isotope of different water bodies in Huainan coal mining area. J Jilin Univ Earth Sci Ed. 2015;45(5):1502–1514.
  • Wang Z, Cao S, Cao G, et al. The partitioning of catchment evapotranspiration fluxes as revealed by stable isotope signals in the alpine inland river basin. Water (Basel). 2022;14(5):790. doi:10.3390/w14050790
  • Mao H, Wang G, Shi Z, et al. Spatiotemporal variation of groundwater recharge in the lower reaches of the Poyang Lake Basin, China: Insights from stable hydrogen and oxygen isotopes. J Geophys Res Atmos. 2021;126(6):e2020JD033760.
  • Liu C, Jiao Y, Zhao D, et al. Effects of farming activities on the temporal and spatial changes of hydrogen and oxygen isotopes present in groundwater in the Hani Rice Terraces, southwest China. Water (Basel). 2020;12(1):265. doi:10.3390/w12010265
  • Newman CP, Poulson SR, Hanna B. Regional isotopic investigation of evaporation and water–rock interaction in mine pit lakes in Nevada, USA. J Geochem Explor. 2020;210:106445. doi:10.1016/j.gexplo.2019.106445
  • Zhang J, Chen L, Hou X, et al. Multi-isotopes and hydrochemistry combined to reveal the major factors affecting carboniferous groundwater evolution in the Huaibei coalfield, North China. Sci Total Environ. 2021;791:148420. doi:10.1016/j.scitotenv.2021.148420
  • Alcalde J, Edraki M, Jerez O, et al. Assessment of mineralogical, textural, and water chemistry changes during long-distance tailings-slurry transport. Mine Water Environ. 2020;39(1):135–149. doi:10.1007/s10230-020-00658-x
  • Hao C, Zhang W, He R, et al. Formation mechanisms for elevated fluoride in the mine water in Shendong coal-mining district. J China Coal Soc. 2021;46(6):1966–1977.
  • Lin Y, Ren H-X, Wu Y-Z, et al. The evolution of hydrogeochemical characteristics of a typical piedmont karst groundwater system in a coal-mining area, Northern China. Environ Earth Sci. 2019;78(18):557. doi:10.1007/s12665-019-8563-y
  • Jiang C, Cheng L, Li C, et al. A hydrochemical and multi-isotopic study of groundwater sulfate origin and contribution in the coal mining area. Ecotox Environ Saf. 2022;248:114286. doi:10.1016/j.ecoenv.2022.114286
  • Jiang C, Liu D, Jiang C, et al. Tracing groundwater discharge into a coal mining subsidence lake in eastern China: observations from water stable (δD and δ18O) and radon (222Rn) isotopes. Appl Geochem. 2023;156:105757. doi:10.1016/j.apgeochem.2023.105757
  • Paulsson O, Widerlund A. Pit lake oxygen and hydrogen isotopic composition in subarctic Sweden: A comparison to the local meteoric water line. Appl Geochem. 2020;118:104611. doi:10.1016/j.apgeochem.2020.104611
  • Hu Z, Zhao Y. Principle and technology of coordinated control of eco-environment of mining areas and river sediments in Yellow River watershed. J China Coal Soc. 2022;47(1):438–448.
  • Feng H, Zhou J, Zhou A, et al. Grassland ecological restoration based on the relationship between vegetation and its below-ground habitat analysis in steppe coal mine area. Sci Total Environ. 2021;778:146221. doi:10.1016/j.scitotenv.2021.146221
  • Roy R, Wang J, Mostofa MG, et al. Fine-tuning of soil water and nutrient fertilizer levels for the ecological restoration of coal-mined spoils using Elaeagnus angustifolia. J Environ Manage. 2020;270:110855. doi:10.1016/j.jenvman.2020.110855
  • Carabassa V, Ortiz O, Alcañiz JM. RESTOQUARRY: indicators for self-evaluation of ecological restoration in open-pit mines. Ecol Indic. 2019;102:437–445. doi:10.1016/j.ecolind.2019.03.001
  • Chun F, Naren M, Zhang W, et al. Spatial heterogeneity of soil heavy metal content in Baiyinhua mining area, Inner Mongolia, China. Chin J Appl Ecol. 2021;32(2):601–608.
  • Mollema PN, Antonellini M. Water and (bio)chemical cycling in gravel pit lakes: A review and outlook. Earth-Sci Rev. 2016;159:247–270. doi:10.1016/j.earscirev.2016.05.006
  • Li N, Hexi G, Bai P, et al. Ecological restoration of Baiyinhua No. 2 mine dump under the background of “carbon peaking and carbon neutrality”. Inner Mongolia Forestry; 2023; 1:25–26.
  • Huang S, Ning S, Zhang J, et al. REE characteristics of the coal in the Erlian Basin, Inner Mongolia, China, and its economic value. China Geol. 2021;4(2):256–265.
  • Zhao Y-P, Zhang D, Tian Y-J, et al. Molecular composition of soluble organic species in Baiyinhua lignite and their evolution profiles during pyrolysis. Fuel. 2017;205:192–197. doi:10.1016/j.fuel.2017.05.041
  • Yuan M, Lyu S, Wang S, et al. Macrolithotype controls on natural fracture characteristics of ultra-thick lignite in Erlian Basin, China: implication for favorable coalbed methane reservoirs. J Pet Sci Eng. 2022;208:109598. doi:10.1016/j.petrol.2021.109598
  • Zhang H, Wang Y, Zhang X, et al. Experimental study of moisture effects on spontaneous combustion of Baiyinhua lignite from individual particles to stockpile. Fuel. 2023;334:126774. doi:10.1016/j.fuel.2022.126774
  • Chun F, Naren M, Zhang W, et al. Spatial heterogeneity of soil heavy metal content in Baiyinhua mining area. Chin J Appl Ecol. 2021;32(2):601–608.
  • He H, Mu W, Zhang X, et al. Spatio-temporal evolution evaluation of geological environment of large open pit coal mine areas in Xilingol League. Earth Sci Front. 2023;2:1–19.
  • Zhang J, Zhang H, Du J, et al. Distribution characteristics of trace elements in coal of Inner Mongolia Baiyinhua coalfield. J China Coal Soc. 2016;41(2):310–315.
  • Qi J, Zhao X, Li X, et al. The distribution of early cretaceous faulted-sags and their relationship with basement structure within Erlian Basin. Earth Sci Front. 2015;22(3):118–128. Chinese.
  • Wen D, Teng S, Yang Z. Study on water filling factors of mining pits in Baiyinhua 3# Open Mine. Coal Sci Technol. 2006;34(7):97–99. Chinese.
  • Cui D. Environmental effect of surface mining on groundwater-taking the coal mine in XILINGOL league as the example. Hohhot: Inner Mongolia University; 2015.
  • Zheng B. Analysis of hydrogeological conditions for mining in Baqibei coalfield, Xiwuzhumuqin Banner. J Inn Mong Hydraul Eng. 2011;32(3):48–50. Chinese.
  • Fang L, Gao R, Jia D, et al. Characteristics and environmental driving factors of water transformation in the Balaguer River watershed of Inner Mongolia steppe. Chin J Appl Ecol. 2021;32(4):860–868.
  • Li W, Hao A, Zheng Y, et al. Regional environmental isotopic features of groundwater and their hydrogeological explanation in the Tarim Basin. Earth Sci Front. 2006;13(1):191–198.
  • Shen B, Wu J, Jilili A. Hydrochemical and isotopic characteristics of the Lake Balkhash catchment, Kazakhstan. Chin J Environ Sci. 2020;41(1):173–782. Chinese.
  • Craig H. Isotopic variations in meteoric waters. Science. 1961;133(3465):1702–1703. doi:10.1126/science.133.3465.1702
  • Gibbs RJ. Mechanisms controlling world water chemistry. Science. 1970;170(3962):1088–1090. doi:10.1126/science.170.3962.1088
  • Kortatsi BK. Hydrochemical framework of groundwater in the Ankobra Basin, Ghana. Aquat Geochem. 2007;13(1):41–74. doi:10.1007/s10498-006-9006-4
  • Majoube M. Fractionnement en oxygène 18 et en deutérium entre l’eau et sa vapeur. J Chim Phys. 1971;68:1423–1436. French. doi:10.1051/jcp/1971681423
  • Horita J, Wesolowski DJ. Liquid–vapor fractionation of oxygen and hydrogen isotopes of water from the freezing to the critical temperature. Geochim Cosmochim Ac. 1994;58(16):3425–3437. doi:10.1016/0016-7037(94)90096-5
  • Guo X, Li W, Sun B. Indication of hydrogen and oxygen stable isotopes in Dali Lake for evaporation and replenishment sources. Arid Zone Res. 2021;38(4):930–938.
  • Horita J, Rozanski K, Cohen S. Isotope effects in the evaporation of water: a status report of the Craig–Gordon model. Isot Environ Health Stud. 2008;44(1):23–49. doi:10.1080/10256010801887174

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