Assessment of the Impact of Abandoned Mine Water on Groundwater Environment
Abstract
:1. Introduction
2. Materials and Methodology
2.1. Study Area
2.2. Methodology
2.2.1. Sampling and Groundwater Hydrochemical Composition Testing
2.2.2. Analysis Method for Groundwater Hydrochemical Characteristics
2.2.3. Method of Evaluating the Impact of Abandoned Mine Groundwater on Regional Groundwater Environment
- (1)
- Determine the matter element to evaluate
- (2)
- Determine the classical domain and joint domain
- (3)
- Determine the incidence function
- (4)
- Determine the weight
- (5)
- Determine the synthetic relation degree of the matter element P0 to be evaluated for each level j
- (6)
- Evaluate the P0 level of the matter element to be evaluated
3. Results and Discussion
3.1. Hydrochemical Characteristics
3.1.1. Characteristics of Major Ions
3.1.2. Hydrochemical Type
3.1.3. Ion Correlation Analysis
3.2. Evaluation of Abandoned Mine Water on Regional Groundwater Environment
4. Conclusions
- (1)
- The order of ion concentration in the groundwater of the abandoned coal mining area is not affected by the wet and dry seasons. The pH of the groundwater is weakly alkaline overall. The order of cation concentration is Ca2+ > Mg2+ > Na+ > K+, and the order of anion concentration is HCO3− > SO42− > NO3− > Cl− > F−. However, the main ion concentration during the dry season is slightly higher than during the wet season. The ion concentration of Na+ and SO42− exhibits obvious variance characteristics, while the pH varies little between seasons.
- (2)
- TDS has an obvious correlation with Ca2+, Mg2+, Cl−, SO42−, and HCO3− during the wet season, with correlation coefficients of 0.987, 0.988, 0.787, 0.930, and 0.765, respectively. This indicates that these chemical components contribute significantly to TDS, especially because the correlation coefficients of Ca2+, Mg2+, and SO42− exceed 0.9.
- (3)
- There are three hydrochemical types of groundwater during the wet season: HCO3-Ca, SO4-Ca, and SO4-Na, accounting for 70%, 25%, and 5% of the total water sample types, respectively. There are two hydrochemical types of groundwater during the dry season: HCO3-Ca and SO4-Ca, accounting for 65% and 35% of the total water sample types, respectively.
- (4)
- A method of assessing the impact of abandoned mine water on the groundwater environment was established based on the improved Nemero index method and matter element theory. The comprehensive evaluation of water quality indicators at the groundwater monitoring point shows that the groundwater environment is severely polluted at level IV.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Yoginder, P.; Chugh, B.K.S.; Chet, S. Sustainable and responsible mining through sound mine closure. Int. J. Coal Sci. Technol. 2023, 10, 14. [Google Scholar]
- Pan, Y.; Liu, Y.; Zeng, X.K.; Wu, J.C. Numerical simulation of groundwater flow field evolution in abandoned mine in the east Xuzhou. Hydrogeol. Eng. Geol. 2017, 44, 52–56. [Google Scholar]
- Chen, Z.H.; Xu, H.; Liao, M.Y.; Zhu, K.Y. Study on prediction of groundwater enrichment region after closure of typical coal mines. Groundwater 2022, 2, 1–3. [Google Scholar]
- Zhai, X.R.; Wu, J.W.; Wang, G.T.; Bi, Y.S.; Hu, J. MODFLOW-based groundwater rebound forecast in abandoned coal mine. Coal Geol. Explor. 2018, 46, 27–32. [Google Scholar]
- Cai, X.J.; Han, R.G.; Meng, L.; Yang, J.W. Safe and warning water level control of closed pit groundwater in Zhaogezhuang Mine. Coal Eng. 2020, 52, 116–121. [Google Scholar]
- Wang, H.; Lv, Y.Y. Study on pollution characteristics and control measures of water pollution caused by coal mining. Environ. Sci. Manag. 2019, 44, 68–73. [Google Scholar]
- Wu, J.W.; Zeng, X.K. Numerical Simulation of Groundwater Pollution in Abandoned Mines; China Water Power Press: Beijing, China, 2015; pp. 90–105. [Google Scholar]
- State Administration of Work Safety. Technical Specification for Monitoring Network Layout of Groundwater Pollution in Abandoned Mines; China Coal Industry Publish House: Beijing, China, 2016; pp. 280–285. [Google Scholar]
- Khalil, A.; Hanich, L.; Hakkou, R.; Lepage, M. GIS-based environmental database for assessing the mine pollution: A case study of an abandoned mine site in Morocco. J. Geochem. Explor. 2014, 144, 468–477. [Google Scholar] [CrossRef]
- Khalil, K.; Hanich, L.; Bannari, A.; Zouhri, L.; Pourret, O.; Hakkou, R. Assessment of soil contamination around an abandoned mine in a semi-arid environment using geochemistry and geostatistics: Pre-work of geochemical process modeling with numerical models. J. Geochem. Explor. 2013, 125, 117–129. [Google Scholar] [CrossRef]
- Ding, G.T.; Liu, Y.X.; Sun, Z.G.; Han, Y.; Zhang, X.B.; Liu, Y.X.; Wei, S.M.; Cao, G.M.; Jiang, L.L. Emergency disposal of groundwater contamination curtain grouting in an abandoned mining area in North China. Acta Geol. Sin. 2019, 1, 291–300. [Google Scholar]
- Pauwels, H.; Pettenati, M.; Greffie, C. The combined effect of abandoned mines and agriculture on groundwater chemistry. J. Contam. Hydrol. 2010, 115, 64–78. [Google Scholar] [CrossRef]
- Plummer, L.N.; Prestemon, E.C.; Parkhurst, D.L. An Interactive Code (NETPATH) for Modeling Net Geochemical Reactions along a Flow Path, version 2.0; US Geological Survey: Lakewood, CO, USA, 1991.
- Zhou, J.J.; Hu, W.Y.; Hou, D.Y. Numerical simulation of groundwater rebound process and water table value in abandoned mines. Coal Geol. Explor. 2011, 4, 28–31. [Google Scholar]
- Zhou, J.J.; Hu, W.Y.; Liu, D.Y. Analysis on Water Content Medium Field Features and Water Flow Motion Features in Abandoned Mine. Coal Sci. Technol. 2011, 1, 107–110. [Google Scholar]
- Gao, B. Groundwater Chemical Characteristics of Jiawang Coal Field in Response to Mine Closure. Master’s Thesis, China University of Mining and Technology, Xuzhou, China, 2014; pp. 45–55. [Google Scholar]
- Isabelle, C.; Cyrille, B.; Jannes, K.; Mustapha, B.; Pascal, B.; Pascal, B. Aseismic mining subsidence in an abandoned mine: Influence factors and consequences for post-mining risk management. Pure Appl. Geophys. 2019, 176, 801–825. [Google Scholar]
- Emdadul, H.; Selim, R.; Raquib, A. Assessing the vulnerability of groundwater due to open pit coal mining using DRASTIC model: A case study of Phulbari Coal Mine, Bangladesh. Geosci. J. 2018, 22, 359–371. [Google Scholar]
- Okolo, C.C.; Oyedotun, T.D.T.; Akamigbo, F.O.R. Open cast mining: Threat to water quality in rural community of Enyigba in south-eastern Nigeria. Appl. Water Sci. 2018, 8, 204. [Google Scholar] [CrossRef] [Green Version]
- Zhang, Q.X.; Zhou, J.W.; Lin, S.H.; Wei, D.; Zhang, L.M.; Yuan, L. Characteristics and causes of groundwater pollution after Hongshan-Zhaili mine closure in Zibo. Saf. Environ. Eng. 2015, 22, 23–28. [Google Scholar]
- Chen, S. Numerical Simulation of Groundwater Pollution and Water and Soil Pollution Evaluation and Analysis in Mining Area of Suzhou in Mining. Master’s Thesis, Hefei University of Technology, Hefei, China, 2020; pp. 25–36. [Google Scholar]
- Wang, H.M. Evolution of Groundwater Environment in the Closed Mines of Yushenfu Mining Area. Doctor’s Thesis, China Coal Research Institute, Beijing, China, 2022; pp. 77–80. [Google Scholar]
- Sun, Y.J.; Xu, Z.M.; Li, X.; Zhang, L.; Chen, G.; Zhao, X.M.; Gao, Y.T.; Liu, Q.; Zhang, S.G.; Wang, W.J.; et al. Mine water drainage pollution in China’s coal mining areas and the construction of prevention and control technical system. Coal Geol. Explor. 2021, 5, 1–16. [Google Scholar]
- Li, T. Study on Groundwater Pollution Risk Assessment of Abandoned Coal Mine. Doctor’s Thesis, China University of Mining and Technology, Xuzhou, China, 2014; pp. 66–103. [Google Scholar]
- Ma, L. Study on Process and Mechanism of Water Rebound Impact on the Regional Groundwater Flow Field in Abandoned Mines. Master’s Thesis, China University of Geosciences, Beijing, China, 2016; pp. 29–33. [Google Scholar]
- Zhu, M.T.; Li, B.; Liu, G. Groundwater risk assessment of abandoned mines based on pressure-state-response—The example of an abandoned mine in southwest China. Energy Rep. 2022, 10728–10740. [Google Scholar] [CrossRef]
- Feng, H.B.B.; Zhou, J.W.; Chai, B.; Zhou, A.G.; Li, J.Z.; Zhu, H.H.; Chen, H.N.; Su, D.H. Groundwater environmental risk assessment of abandoned coal mine in each phase of the mine life cycle: A case study of Hongshan coal mine, North China. Environ. Sci. Pollut. Res. 2020, 27, 42001–42021. [Google Scholar] [CrossRef]
- Irina, T.; Aleksei, K.; Alexander, Z.; Igor, C. Chemical composition of groundwater in abandoned coal mines: Evidence of hydrogeochemical evolution. Appl. Geochem. 2022, 137, 105210. [Google Scholar]
- Azzeddine, K.; Talbi, E.H.; Abdessalam, A.; Khalid, B.; Isabel, M.H.R.A.; Mohamed, A. Groundwater vulnerability and potentially toxic elements associated with the iron mining district of Ouixane (Northeast of Morocco). Water 2023, 15, 118. [Google Scholar]
- Jiang, B.B.; Ji, K.M.; Xu, D.J.; Cao, Z.G.; Wen, S.K.; Song, K.; Ma, L. Effects of coal gangue on the hydrochemical components under different types of site karst water in closed mines. Water 2022, 14, 3110. [Google Scholar] [CrossRef]
- Yang, Q.; Cao, Y.J.; Zhang, Y.; Chen, J.Y.; Wang, S.Z.; Tian, D. Hydrochemical characteristics and its cause analysis of groundwater and mine water in closed Lead Zinc Mining Area. Ecol. Environ. Sci. 2023, 32, 361–371. [Google Scholar]
- Zhang, Q.X.; Zhou, J.W.; Kang, F.X.; Lin, S.H.; Wei, D.; Zhang, L.M.; Yuan, L. Hydrodynamic analysis and isotope tracing for probing into groundwater pollution of Zibo Mining Area. Environ. Sci. Technol. 2016, 39, 116–121. [Google Scholar]
- Zhang, W.F. Hydrogeochemical Changes of Closed Pit Simulation System in Coal Mine. Master’s Thesis, China University of Mining and Technology, Xuzhou, China, 2017; pp. 25–35. [Google Scholar]
- Patrick, M.; Christopher, P. Assessing the long-term evolution of mine water quality in abandoned underground mine workings using first-flush based models. Sci. Total Environ. 2022, 846, 157390. [Google Scholar]
- Suvarna, B.; Sunitha, V.; Sudharshan, R.Y.; Muralidhara, R.B.; Kadam, A.K.; Ramakrishna, M.R. Groundwater quality assessment using multivariate statistical approach and geospatial modelling around cement industrial corridor, South India. Int. J. Environ. Sci. Technol. 2023, 20, 5051–5070. [Google Scholar] [CrossRef]
- Baran, A.H.; Nalbantcilar, T.M.; Koktan, N. Pollution and health risk assessment of heavy metals in waters around mine sites of Elazig (Eastern Turkey). J. Mountain Sci. 2023, 20, 1293–1306. [Google Scholar] [CrossRef]
- Chen, Y.Z. Karst Spring Water Pollution by Abandoned Coal Mines—A Case of Longdong Spring Pollution. Master’s Thesis, China University of Mining and Technology, Xuzhou, China, 2019; pp. 32–41. [Google Scholar]
- Anthony, C.; Obiora, S.C. Effect of Lead–Zinc mining on socio-economic and health conditions of Enyigba and Ishiagu Lead–zinc Mining Districts of Southeastern Nigeria. Min. Metall. Explor. 2023, 40, 691–701. [Google Scholar]
- Zhang, P.; Zhang, J.P.; Wang, J. Research on open-pit coal mine geological environment problems and governance program. Coal Technol. 2016, 12, 320–321. [Google Scholar]
- Wu, Q.; Li, S.Y. Positive and negative environmental effects of closed mines and its countermeasures. J. China Coal Soc. 2018, 43, 21–32. [Google Scholar]
- Sun, W.J.; Ren, S.L.; Wu, Q.; Dong, D.L.; Gan, X.Y. Water pollution’s prevention and comprehensive utilization of abandoned coal mines in China under the new normal life. J. China Coal Soc. 2022, 47, 2161–2169. [Google Scholar]
- Du, M.Z.; Li, H.J.; Li, W.; Qiu, H.; Jiang, P.; Wang, D.H. Study progress and development directions of the prevention and control technology of ground water pollution in coal mine sites. Met. Mine 2020, 9, 1–14. [Google Scholar]
- Zhu, Y.N.; Wang, S.S.; Song, B.L.; Zhang, Y.; Yu, X.L. Summary of mechanism and treatment of mine groundwater pollution. Technol. Innov. Appl. 2023, 13, 36–39. [Google Scholar]
- Cai, W. Matter-Element Model and Its Application; Science and Technology Press: Beijing, China, 1994; pp. 56–67. [Google Scholar]
- GB/T14848-2017; Standard for Groundwater Quality. State Administration of Quality Supervision, Inspection and Quarantine of the China. Standardization Administration of China: Beijing, China, 2017; pp. 2–4.
- Zhu, X.Y.; Qian, X.X. Groundwater Hydrology; China Environmental Science Press: Beijing, China, 2005; pp. 42–46. [Google Scholar]
Ca2+ | SO42− | F− | NO3− | TDS |
---|---|---|---|---|
132 | 139 | 0.188 | 30.3 | 650.516 |
I | II | III | IV | V | |
---|---|---|---|---|---|
Ca2+ | ≤150 | ≤300 | ≤450 | ≤550 | ≤650 |
SO42− | ≤50 | ≤150 | ≤250 | ≤350 | ≤450 |
F− | ≤1 | ≤1 | ≤1 | ≤2 | ≤3 |
NO3− | ≤2 | ≤5 | ≤20 | ≤30 | ≤40 |
TDS | ≤300 | ≤500 | ≤1000 | ≤2000 | ≤3000 |
Time Interval | Statistical Value | K+ | Na+ | Ca2+ | Mg2+ | Cl− | SO42− | HCO3− | F− | NO3− | TDS | pH |
---|---|---|---|---|---|---|---|---|---|---|---|---|
ρ/(mg‧L−) | ||||||||||||
Wet season | Maximum | 15.7 | 91 | 583 | 211 | 49.8 | 1763 | 456 | 0.559 | 45.4 | 3122.08 | 7.87 |
Minimum | 0.49 | 5.52 | 3.53 | 0.64 | 9.03 | 77.1 | 152 | 0.172 | 0.693 | 381.966 | 7.23 | |
Average | 2.383 | 12.708 | 156.017 | 40.842 | 16.982 | 294.525 | 301.15 | 0.3 | 21.535 | 3122.08 | 7.587 | |
Standard deviation | 3.164 | 19.514 | 109.334 | 41.384 | 10.464 | 360.448 | 62.809 | 0.093 | 11.333 | 559.289 | 0.169 | |
Variation coefficient (VC) | 1.328 | 1.536 | 0.701 | 1.013 | 0.616 | 1.224 | 0.209 | 0.308 | 0.526 | 0.67 | 0.022 | |
Dry season | Maximum | 4.7 | 40.3 | 587 | 226 | 57.4 | 1959 | 527.29 | 0.577 | 58.2 | 3443.343 | 8 |
Minimum | 0.4 | 1.81 | 87.5 | 17.3 | 10.3 | 55.2 | 214.46 | 0.121 | 0.597 | 460.499 | 7.1 | |
Average | 1.04 | 8.41 | 160.01 | 43.46 | 19.55 | 297.01 | 304.27 | 0.27 | 20.72 | 868.64 | 7.49 | |
Standard deviation | 0.86 | 7.91 | 108.01 | 44.76 | 12.23 | 408.3 | 60.77 | 0.11 | 14.01 | 630.69 | 0.17 | |
Variation coefficient (VC) | 0.83 | 0.94 | 0.68 | 1.03 | 0.63 | 1.37 | 0.2 | 0.42 | 0.68 | 0.73 | 0.02 |
Ion | Dry Season | |||||||||
K+ | Na+ | Ca2+ | Mg2+ | Cl− | SO42− | HCO3− | F− | NO3− | TDS | |
K+ | 1 | |||||||||
Na+ | 0.975 ** | 1 | ||||||||
Ca2+ | −0.093 | 0.066 | 1 | |||||||
Mg2+ | 0.025 | 0.152 | 0.969 ** | 1 | ||||||
Cl− | 0.063 | 0.273 | 0.808 ** | 0.691 ** | 1 | |||||
SO42− | 0.407 | 0.531 * | 0.863 ** | 0.917 ** | 0.718 ** | 1 | ||||
HCO3− | −0.357 | −0.253 | 0.816 ** | 0.743 ** | 0.595 ** | 0.528 * | 1 | |||
F− | −0.152 | −0.261 | 0.126 | 0.233 | −0.394 | 0.084 | 0.26 | 1 | ||
NO3− | 0.15 | −0.467 * | −0.467 * | −0.579 ** | 0.105 | −0.403 | −0.520 * | −0.789 ** | 1 | |
TDS | 0.053 | 0.202 | 0.987 ** | 0.988 ** | 0.787 ** | 0.930 ** | 0.765 ** | 0.136 | −0.487 * | 1 |
Ion | Wet season | |||||||||
K+ | Na+ | Ca2+ | Mg2+ | Cl− | SO42− | HCO3− | F− | NO3− | TDS | |
K+ | 1 | |||||||||
Na+ | 0.950 ** | 1 | ||||||||
Ca2+ | 0.958 ** | 0.936 ** | 1 | |||||||
Mg2+ | 0.981 ** | 0.901 ** | 0.975 ** | 1 | ||||||
Cl− | 0.722 ** | 0.890 ** | 0.768 ** | 0.656 ** | 1 | |||||
SO42− | 0.980 ** | 0.915 ** | 0.986 ** | 0.998 ** | 0.689 ** | 1 | ||||
HCO3− | 0.866 ** | 0.909 ** | 0.909 ** | 0.848 ** | 0.815 ** | 0.864 ** | 1 | |||
F− | 0.12 | −0.105 | 0.21 | 0.28 | −0.344 | 0.26 | −0.008 | 1 | ||
NO3− | −0.44 | −0.218 | −0.368 | −0.505 * | 0.15 | −0.471 * | −0.262 | −0.666 ** | 1 | |
TDS | 0.979 ** | 0.939 ** | 0.995 ** | 0.989 ** | 0.744 ** | 0.995 ** | 0.903 ** | 0.21 | −0.411 | 1 |
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Liu, Y.; Ma, G.; Han, Y.; Wang, Y.; Tang, C.; Tian, N.; Tang, X.; Jiang, L.; Zuo, H.; Zhang, Y.; et al. Assessment of the Impact of Abandoned Mine Water on Groundwater Environment. Water 2023, 15, 2649. https://doi.org/10.3390/w15142649
Liu Y, Ma G, Han Y, Wang Y, Tang C, Tian N, Tang X, Jiang L, Zuo H, Zhang Y, et al. Assessment of the Impact of Abandoned Mine Water on Groundwater Environment. Water. 2023; 15(14):2649. https://doi.org/10.3390/w15142649
Chicago/Turabian StyleLiu, Yuxiang, Guanqun Ma, Yu Han, Yubo Wang, Cui Tang, Ning Tian, Xiaoshan Tang, Lulu Jiang, Hanyue Zuo, Yuexing Zhang, and et al. 2023. "Assessment of the Impact of Abandoned Mine Water on Groundwater Environment" Water 15, no. 14: 2649. https://doi.org/10.3390/w15142649