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Coal Geology & Exploration

Authors

XUE Jiankun, School of Earth and Environment, Anhui University of Science & Technology, Huainan 232001, China; CCTEG Xi’an Research Institute (Group) Co., Ltd., Xi’an 710077, China; State Key Laboratory of Disaster Prevention and Ecology Protection in Open-pit Coal Mines, Xi’an 710077, ChinaFollow
WANG Shuangming, School of Earth and Environment, Anhui University of Science & Technology, Huainan 232001, China; College of Geology and Environment, Xi’an University of Science and Technology, Xi’an 710054, ChinaFollow
ZHANG Pingsong, School of Earth and Environment, Anhui University of Science & Technology, Huainan 232001, China
WANG Xiaodong, CCTEG Xi’an Research Institute (Group) Co., Ltd., Xi’an 710077, China; State Key Laboratory of Disaster Prevention and Ecology Protection in Open-pit Coal Mines, Xi’an 710077, China
ZHOU Zhenfang, CCTEG Xi’an Research Institute (Group) Co., Ltd., Xi’an 710077, China; State Key Laboratory of Disaster Prevention and Ecology Protection in Open-pit Coal Mines, Xi’an 710077, China
WANG Tiantian, CCTEG Xi’an Research Institute (Group) Co., Ltd., Xi’an 710077, China; State Key Laboratory of Disaster Prevention and Ecology Protection in Open-pit Coal Mines, Xi’an 710077, China
ZHANG Quan, CCTEG Xi’an Research Institute (Group) Co., Ltd., Xi’an 710077, China; State Key Laboratory of Disaster Prevention and Ecology Protection in Open-pit Coal Mines, Xi’an 710077, China
XU Shi'ang, School of Earth and Environment, Anhui University of Science & Technology, Huainan 232001, China
WANG Zhizhou, CCTEG Xi’an Research Institute (Group) Co., Ltd., Xi’an 710077, China; State Key Laboratory of Disaster Prevention and Ecology Protection in Open-pit Coal Mines, Xi’an 710077, China

Abstract

Background High-salinity mine water (HSMW) is widely distributed in mining areas in western China, while its discharge and treatment pose severe challenges to both the ecosystem and resource utilization. In recent years, HSMW storage in deep strata has gained widespread attention as an environmentally friendly and resource-saving approach for mine water treatment.Advances Focusing on the general characteristics of HSMW, this study systematically reviewed the key scientific issues and technical bottlenecks associated with HSMW storage in deep strata, highlighting its principles, technical classification, and engineering application. It comprehensively elucidated the applicability boundaries of this technology, involving the core links such as geological condition assessment, injection well design, water quality pretreatment, process monitoring, and storage stability evaluation. Additionally, this study proposed a method for selecting deep reservoir horizons for HSMW storage from the perspective of four characteristics: regional structures, basic geology, physical properties of reservoirs and caprocks, and hydrogeological conditions. The design principles of injection well structures were defined by integrating three factors: safety and environmental friendliness, injection efficiency, and economic feasibility. Furthermore, this study clarified the advantages and limitations of techniques for HSMW pretreatment, along with mine water quality requirements for reinjection. Accordingly, this study established a whole-process dynamic monitoring system for HSMW reinjection and developed a multi-physics coupling-based method for the stability evaluation of mine water storage. In addition, the limitations of existing technologies were further summarized, such as scaling, corrosion, geological disturbances, and potential environmental risks. Prospects Future development of HSMW storage in deep strata should focus on efficient, low-consumption water treatment technologies, scaling and corrosion prevention systems, assessment of geological environmental impacts, and the improvement of relevant policies and regulations. The purpose is to provide a scientific basis for establishing a new paradigm of low-carbon mine water treatment. HSMW storage in deep strata facilitates water resource recycling while addressing the issue of mine water discharge, providing significant environmental and economic benefits. Driven by continuous breakthroughs in efficient, low-consumption treatment techniques and novel functional materials, HSMW storage in deep strata will develop toward standardization, intelligence, and greening.

Keywords

mine water, high-salinity, storage in deep strata, geological condition assessment, dynamic monitoring, development trend

DOI

10.12363/issn.1001-1986.25.09.0737

Reference

[1] 康红普,谢和平,王双明,等. 煤炭与共伴生矿产资源一体化绿色开发战略研究[J]. 中国工程科学,2025,27(2):172−183

KANG Hongpu,XIE Heping,WANG Shuangming,et al. Research on the integrated green development strategy of coal and co–existed and associated resources[J]. Strategic Study of Chinese Academy of Engineering,2025,27(2):172−183

[2] 顾大钊,李庭,李井峰,等. 我国煤矿矿井水处理技术现状与展望[J]. 煤炭科学技术,2021,49(1):11−18

GU Dazhao,LI Ting,LI Jingfeng,et al. Current status and prospects of coal mine water treatment technology in China[J]. Coal Science and Technology,2021,49(1):11−18

[3] 孙亚军,郭娟,徐智敏,等. 我国煤矿区矿井水水质空间分布特征及矿井水处理技术思路[J]. 煤炭学报,2025,50(1):584−599

SUN Yajun,GUO Juan,XU Zhimin,et al. Spatial distribution characteristics of mine water quality in coal mining areas of China and technological approaches for mine water treatment[J]. Journal of China Coal Society,2025,50(1):584−599

[4] 范立民,马雄德,蒋泽泉,等. 保水采煤研究30年回顾与展望[J]. 煤炭科学技术,2019,47(7):1−30

FAN Limin,MA Xiongde,JIANG Zequan,et al. Review and thirty years prospect of research on water–preserved coal mining[J]. Coal Science and Technology,2019,47(7):1−30

[5] 顾大钊,张勇,曹志国. 我国煤炭开采水资源保护利用技术研究进展[J]. 煤炭科学技术,2016,44(1):1−7

GU Dazhao,ZHANG Yong,CAO Zhiguo. Technical progress of water resource protection and utilization by coal mining in China[J]. Coal Science and Technology,2016,44(1):1−7

[6] 武强,王志强,郭周克,等. 矿井水控制、处理、利用、回灌与生态环保五位一体优化结合研究[J]. 中国煤炭,2010,36(2):109−112

WU Qiang,WANG Zhiqiang,GUO Zhouke,et al. A research on an optimized five–in–one combination of mine water control,treatment,utilization,back–filling and environment friendly treatment[J]. China Coal,2010,36(2):109−112

[7] 武强,高俊莲,曾一凡,等. 我国煤矿矿井水全生命周期保护与利用研究[J]. 中国工程科学,2025,27(2):184−204

WU Qiang,GAO Junlian,ZENG Yifan,et al. Life–cycle protection and utilization of coal mine water in China[J]. Strategic Study of Chinese Academy of Engineering,2025,27(2):184−204

[8] 孙亚军,张梦飞,高尚,等. 典型高强度开采矿区保水采煤关键技术与实践[J]. 煤炭学报,2017,42(1):56−65

SUN Yajun,ZHANG Mengfei,GAO Shang,et al. Water–preserved mining technology and practice in typical high intensity mining area of China[J]. Journal of China Coal Society,2017,42(1):56−65

[9] 孙亚军,李鑫,冯琳,等. 鄂尔多斯盆地煤–水协调开采下矿区水资源异位回灌–存储技术思路[J]. 煤炭学报,2022,47(10):3547−3560

SUN Yajun,LI Xin,FENG Lin,et al. Technical thinking on ectopic injection and storage of mine area water resources under the coordinated exploitation of coal and water background in Ordos Basin[J]. Journal of China Coal Society,2022,47(10):3547−3560

[10] 董书宁,王皓,苗贺朝,等. 矿井水资源全周期综合管控系统平台研发与应用[J]. 智能矿山,2025,6(7):35−39

[11] 王皓,董书宁,尚宏波,等. 国内外矿井水处理及资源化利用研究进展[J]. 煤田地质与勘探,2023,51(1):222−236

WANG Hao,DONG Shuning,SHANG Hongbo,et al. Domestic and foreign progress of mine water treatment and resource utilization[J]. Coal Geology & Exploration,2023,51(1):222−236

[12] 赵春虎,杨建,王世东,等. 矿井水深层回灌过程量质耦合模拟分析[J]. 煤田地质与勘探,2021,49(5):36−44

ZHAO Chunhu,YANG Jian,WANG Shidong,et al. Coupling simulation of groundwater dynamics and solute transfer in the process of deep reinjection of mine water[J]. Coal Geology & Exploration,2021,49(5):36−44

[13] 杜松,张超,吴唯民,等. 深井灌注技术用于处理煤矿高盐废水的展望[J]. 中国给水排水,2020,36(16):40−48

DU Song,ZHANG Chao,WU Weimin,et al. Prospect of deep well injection for treatment of coal mine drainage brine wastewater[J]. China Water & Wastewater,2020,36(16):40−48

[14] 杜松,李祥,车巧慧,等. 煤矿矿井水深部地质封存技术体系与工程应用[J/OL]. 煤炭学报,2025:1–18 (2025-11-28)[2025-09-18]. https://doi.org/10.13225/j.cnki.jccs.2025.0974.

DU Song,LI Xiang,CHE Qiaohui,et al. Technical system and engineering application of geological deep well injection and storage of coal mine water[J/OL]. Journal of China Coal Society,2025:1–18 (2025-11-28) [2025-09-18]. https://doi.org/10.13225/j.cnki.jccs.2025.0974.

[15] 毛维东,郭中权,付元,等. 煤矿含盐矿井水处理利用技术综述[J]. 煤炭科学技术,2025,53(1):365−376

MAO Weidong,GUO Zhongquan,FU Yuan,et al. A review of coal mine saline mine water treatment and utilization technologies[J]. Coal Science and Technology,2025,53(1):365−376

[16] 靳德武,王甜甜,赵宝峰,等. 宁东煤田东北部高矿化度地下水分布特征及形成机制[J]. 煤田地质与勘探,2022,50(7):118−127

JIN Dewu,WANG Tiantian,ZHAO Baofeng,et al. Distribution characteristics and formation mechanism of high salinity groundwater in northeast Ningdong coalfield[J]. Coal Geology & Exploration,2022,50(7):118−127

[17] MCMAHON P B,LANDON M K,STEPHENS M J,et al. Fluid migration pathways to groundwater in mature oil fields:Exploring the roles of water injection/production and oil–well integrity in California,USA[J]. Science of the Total Environment,2023,900:166400.

[18] YAPPAROVA A,LAMY–CHAPPUIS B,SCOTT S W,et al. Cold water injection near the magmatic heat source can enhance production from high–enthalpy geothermal fields[J]. Geothermics,2023,112:102744.

[19] EYINLA D S,LEGGETT S,BADROUCHI F,et al. A comprehensive review of the potential of rock properties alteration during CO2 injection for EOR and storage[J]. Fuel,2023,353:129219.

[20] 陈歌,孙亚军,隋旺华,等. 我国煤矿区矿井水深井回灌的研究现状和技术挑战[J]. 工程地质学报,2025,33(3):1043−1057

CHEN Ge,SUN Yajun,SUI Wanghua,et al. Technological challenge and research status of mine water deep re–injection in coal mining areas of China[J]. Journal of Engineering Geology,2025,33(3):1043−1057

[21] 陈歌. 鄂尔多斯盆地东缘矿井水深部转移存储机理研究[D]. 徐州:中国矿业大学,2020.

CHEN Ge. Study on the deep transfer and storage mechanism of mine water in the eastern margin of Ordos Basin[D]. Xuzhou:China University of Mining and Technology,2020.

[22] 张小莉,李亚军,冯淳,等. 榆林–神木地区CO2咸水层封存甜点优选[J]. 西北大学学报(自然科学版),2023,53(6):900−912

ZHANG Xiaoli,LI Yajun,FENG Chun,et al. Sweet spot selection in CO2 saline aquifers geological storage,Yulin–Shenmu area[J]. Journal of Northwest University (Natural Science Edition),2023,53(6):900−912

[23] 赵艳,杨柳,奚茹茹,等. 基于核磁共振和磁共振成像的低渗透岩芯CO2–H2O两相驱替特征研究[J]. 岩土力学,2023,44(6):1636−1644

ZHAO Yan,YANG Liu,XI Ruru,et al. CO2–H2O two–phase displacement characteristics of low permeability core using nuclear magnetic resonance and magnetic resonance imaging techniques[J]. Rock and Soil Mechanics,2023,44(6):1636−1644

[24] 古丽波斯坦·吐逊江,隋旺华,艾比拜尔·买买提,等. 鄂尔多斯盆地矿井水深部地质存储适宜性评价[J]. 煤田地质与勘探,2025,53(7):215−226

GULBOSTAN Tursun,SUI Wanghua,AIBIBAI Mamat,et al. Suitability evaluation for deep geological storage of mine water in the Ordos Basin[J]. Coal Geology & Exploration,2025,53(7):215−226

[25] NGUYEN T S,GUGLIELMI Y,GRAUPNER B,et al. Mathematical modelling of fault reactivation induced by water injection[J]. Minerals,2019,9(5):282.

[26] ZHANG Liang,GENG Songhe,CHAO Jiahao,et al. Corrosion risk assessment of geothermal reinjection wellbore in Xining Basin,China[J]. Geothermics,2021,90:101995.

[27] 冯龙飞,王双明,王皓. 矿井水深井地质存储水动力学演化及井型优选[J]. 煤炭学报,2025,50(6):3029−3043

FENG Longfei,WANG Shuangming,WANG Hao. Dynamics evolution and well type optimization of deep well injection in coal mines water[J]. Journal of China Coal Society,2025,50(6):3029−3043

[28] 范翼帆,段忠丰,杨永红,等. 热储特征对砂岩热储采灌井距的影响:以济阳坳陷为例[J]. 水文地质工程地质,2024,51(1):215−223

FAN Yifan,DUAN Zhongfeng,YANG Yonghong,et al. Impact of reservoir characteristics on the well spacing of sandstone geothermal reservoir:A case study of Jiyang Depression[J]. Hydrogeology & Engineering Geology,2024,51(1):215−223

[29] WANG Fan,WANG Yu,JING Cong. Application overview of membrane separation technology in coal mine water resources treatment in Western China[J]. Mine Water and the Environment,2021,40(2):510−519.

[30] 张全,杨建,胡骁,等. 混合纳滤反渗透净化洁净预疏放水工艺和水质预测[J]. 煤炭学报,2022,47(4):1647−1656

ZHANG Quan,YANG Jian,HU Xiao,et al. Purification process and water quality prediction of clean drainage water by mixed nanofiltration reverse osmosis[J]. Journal of China Coal Society,2022,47(4):1647−1656

[31] SHANDILYA R N,BRESCIANI E,RUNKEL A C,et al. Influence of inter–aquifer leakage on well–injection capacity:Theory and aquifer–scale mapping for artificial recharge[J]. Journal of Environmental Management,2022,322:116035.

[32] 张海滨,卢迪,王永昌,等. CO2海底地质封存泄漏监测研究进展[J]. 环境工程,2023,41(10):61−68

ZHANG Haibin,LU Di,WANG Yongchang,et al. Development and prospect of CO2 leakage monitoring during offshore geological storage[J]. Environmental Engineering,2023,41(10):61−68

[33] DU Zhuoran,SONG Jian,DU Song,et al. Numerical modeling of geological sequestration of brine wastewater due to coal mining in the Ordos Basin,China[J]. Science of the Total Environment,2024,908:168580.

[34] 刘琪,孙亚军,范建国,等. 高矿化度矿井水深井回灌驱动下地下水流场演化与突水风险模拟[J]. 煤田地质与勘探,2025,53(11):195−208

LIU Qi,SUN Yajun,FAN Jianguo,et al. Simulation of groundwater flow field evolution and water inrush risks under the deep–well reinjection of high–TDS mine water[J]. Coal Geology & Exploration,2025,53(11):195−208

[35] 刘泽,张翼龙,李潇瀚,等. 人工回灌条件下回灌水水量及水质对地下水化学特征的影响[J]. 干旱区资源与环境,2020,34(10):171−178

LIU Ze,ZHANG Yilong,LI Xiaohan,et al. Effects of quantity and quality of recharge water on hydrochemical characteristics of groundwater during artificial recharge process[J]. Journal of Arid Land Resources and Environment,2020,34(10):171−178

[36] 薛美平,张志军,赵岳. 呼吉尔特矿区矿井水回灌模拟的水化学演化研究[J]. 煤炭科学技术,2023,51(增刊1):470−476

XUE Meiping,ZHANG Zhijun,ZHAO Yue. Hydrochemical evolution of mine water injection in Hojirt mining area[J]. Coal Science and Technology,2023,51(Sup.1):470−476

[37] 李鑫. 蒙陕接壤区高TDS矿井水深层回贮刘家沟砂岩渗流介质演化机制[D]. 徐州:中国矿业大学,2024.

LI Xin. Liujiagou sandstone seepage medium evolutionary mechanism for high TDS mine water deep reinjection in Inner Mongolia and Shaanxi adjacent region[D]. Xuzhou:China University of Mining and Technology,2024.

[38] 王丹丹,党志伟,石哲伟,等. 裂隙分布及井间距对增强型地热系统采热性能的影响[J]. 地球物理学进展,2024,39(3):975−989

WANG Dandan,DANG Zhiwei,SHI Zhewei,et al. Effect of fracture distribution and well spacing on heat recovery performance of enhanced geothermal system[J]. Progress in Geophysics,2024,39(3):975−989

[39] LIMA M G,SCHÄDLE P,GREEN C P,et al. Permeability impairment and salt precipitation patterns during CO2 injection into single natural brine–filled fractures[J]. Water Resources Research,2020,56(8):e2020WR027213.

[40] 盛丹娜,王惠民,盛金昌,等. CO2地质封存中随机裂隙网络走向对盖层密封性影响[J]. 地球科学,2025,50(1):349−360

SHENG Danna,WANG Huimin,SHENG Jinchang,et al. Effect of random fracture network orientations on sealing performance of caprock in CO2 geological sequestration[J]. Earth Science,2025,50(1):349−360

[41] 李世峰,高文婷,牛永强,等. 矿井废水回灌工程试验研究[J]. 河北工程大学学报(自然科学版),2012,29(4):66−70

LI Shifeng,GAO Wenting,NIU Yongqiang,et al. The experimental study on recharge engineering of mine wastewater[J]. Journal of Hebei University of Engineering (Natural Science Edition),2012,29(4):66−70

[42] 张雷,徐智敏,袁慧卿,等. 深部开采高盐矿井水减排治理技术体系构建与实现[J]. 煤炭科学技术,2023,51(12):208−219

ZHANG Lei,XU Zhimin,YUAN Huiqing,et al. Construction and implementation of emission reduction and treatment technology system in deep mining of high salt mine water[J]. Coal Science and Technology,2023,51(12):208−219

[43] 马莲净,王颂,杜松,等. 宁东煤田枯竭油层回注存储高矿化度矿井水技术思路[J]. 煤炭科学技术,2023,51(12):149−158

MA Lianjing,WANG Song,DU Song,et al. Depleted petroleum reservoirs reinjection and storage technical thinking of highly–mineralized mine water in Ningdong coalfield[J]. Coal Science and Technology,2023,51(12):149−158

[44] 王丽,杜松,文扬. 煤矿矿井水综合利用存在问题及原因分析:以黄河流域煤矿为例[J]. 中国国土资源经济,2025,38(7):23−29

WANG Li,DU Song,WEN Yang. Analysis on the problems and causes of comprehensive utilization of coal mine pit water:A case study of coal mines in the Yellow River Basin[J]. Natural Resource Economics of China,2025,38(7):23−29

[45] 张溪彧,杨建,王皓,等. 露天矿地下水库人工回灌介质渗透性与水质变化规律研究[J]. 煤炭科学技术,2022,50(7):291−297

ZHANG Xiyu,YANG Jian,WANG Hao,et al. Study on the regular pattern of medium permeability and water quality variation during artificial recharge of open–pit mine groundwater reservoir[J]. Coal Science and Technology,2022,50(7):291−297

[46] 黄艳艳,那金,雷宏武. 开封地区砂岩孔隙热储回灌化学堵塞数值模拟研究[J]. 太阳能学报,2024,45(2):225−235

HUANG Yanyan,NA Jin,LEI Hongwu. Numerical simulation study of chemical clogging of sandstone pore thermal reservoirs reservoir backfill in Kaifeng area[J]. Acta Energiae Solaris Sinica,2024,45(2):225−235

[47] 王翰文,张力为,梅开元,等. CO2地质利用与封存环境下钢材腐蚀行为与腐蚀控制措施研究进展[J]. 热力发电,2024,53(2):37−47

WANG Hanwen,ZHANG Liwei,MEI Kaiyuan,et al. Research progress on corrosion behavior and corrosion control measures of steel under CO2 geological utilization and storage environment[J]. Thermal Power Generation,2024,53(2):37−47

[48] 李炯,李明广,詹红兵,等. 井周堵塞对承压含水层定流量回灌渗流场影响的半解析研究[J]. 岩土力学,2023,44(10):2871−2878

LI Jiong,LI Mingguang,ZHAN Hongbing,et al. Semi–analytical solutions for groundwater flow dynamics in confined aquifers under constant–rate injection considering clogging of aquifers around well[J]. Rock and Soil Mechanics,2023,44(10):2871−2878

[49] 丁朋朋. 多场耦合作用下深部砂岩热储地层形变及传热特性研究[D]. 济南:山东大学,2022.

DING Pengpeng. Research on deformation and heat transfer characteristics of deep sandstone thermal reservoir under multi–field coupling[D]. Jinan:Shandong University,2022.

[50] 卞伟,李井峰,刘淑琴,等. 宁东基地高矿化度矿井水处理工程实践与发展方向[J]. 水处理技术,2021,47(8):120−123

BIAN Wei,LI Jingfeng,LIU Shuqin,et al. Study on the technical route of highly mineralized mine water treatment in N ingdong energy base[J]. Technology of Water Treatment,2021,47(8):120−123

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