Affiliation:
1. College of Geology and Environment, Xi′an University of Science and Technology, Xi′an 710054, China
2. School of Water and Environment, Chang’an University, Xi’an 710054, China
3. Xi′an Research Institute of China Coal Technology & Engineering, (Group), Corp, Xi′an 710054, China
Abstract
The over-exploitation of groundwater and the deterioration of its quality have heightened the importance of non-traditional water resources, such as mine water. The study of the water’s chemical characteristics and the formation mechanism of high-salinity mine water in semi-arid regions holds significant importance for zero discharge and the resource utilization of mine water in Northwest China. In this study, a total of 38 groundwater and mine water samples were collected to examine the hydrogeochemical characteristics of high-salinity mine water using Piper diagrams and Gibbs diagrams, as well as isotope analyses and ion ratio coefficients. Additionally, the corresponding mine water treatment recommendations were put forward. The results show that the TDS content of groundwater increases with hydrographic depth. The average TDS concentration of Quaternary, Luohe, and Anding groundwater is 336.87, 308.67, and 556.29 mg/L, respectively. However, the TDS concentration of Zhiluo groundwater and mine water is 2768.57 and 3826.40 mg/L, respectively, which belong to high-salinity water. The Quaternary, Luohe, and Anding groundwater hydrochemical type is predominantly HCO3-Ca type, and the Zhiluo groundwater and mine water hydrochemical type is predominantly the SO4-Na type. Furthermore, there is minimal difference observed in δD and δ18O values among these waters. It can be inferred that the Zhiluo Formation in groundwater serves as the primary source of mine water supply, primarily influenced by the processes of concentration caused by evaporation. The high salinity of mine water is closely related to the high salinity of Zhiluo groundwater. The high salinity of groundwater has evolved gradually under the control of the concentration caused by evaporation and rock-weathering processes. The dissolution of salt rock, gypsum, along with other minerals, serves as the material basis for high-salinity groundwater formation. In addition, the evolution of major ions is also affected by cation exchange. The TDS concentration of mine water ranges from 3435.4 mg/L to 4414.3 mg/L, and the combined treatment process of nanofiltration and reverse osmosis can be selected to remove the salt. After treatment, mine water can be used for productive, domestic, and ecological demands.
Funder
Natural Science Foundation of Shaanxi province
National Key Research and Development Program of China
Reference43 articles.
1. Al-Aizari, H.S., Aslaou, F., Al-Aizari, A.R., Al-Odayni, A.-B., and Al-Aizari, A.-J.M. (2023). Evaluation of Groundwater Quality and Contamination Using the Groundwater Pollution Index (GPI), Nitrate Pollution Index (NPI), and GIS. Water, 15.
2. Reassessing the projections of the world water development report;Boretti;NPJ Clean Water,2019
3. How Rapid Urbanization Drives Deteriorating Groundwater Quality in a Provincial Capital of China;Zhang;Pol. J. Environ. Stud.,2020
4. Coal resources, production, and use in China;Mao;Coal Handb.,2023
5. Demand and fluctuation range of China’s coal production under the dual carbon target;Ren;Energy Rep.,2024