•  
  •  
 

Coal Geology & Exploration

Abstract

Background Open-pit coal mines in China are primarily distributed in arid and semi-arid regions such as Xinjiang and Inner Mongolia. However, the contradiction between coal mining and groundwater resource conservation is increasingly prominent in these regions. Specifically, a substantial amount of mine water inflow produced during coal mining tends to lead to the further loss of groundwater resources within the influence range of a mining area. Concurrently, the failure of efficient mine water storage intensifies the regional water shortage.Methods This study investigated a typical open-pit coal mine in eastern Inner Mongolia. Using methods such as field survey and sampling, borehole monitoring, laboratory hydrochemical tests, and numerical simulation, this study primarily determined the quantitative composition, hydrogeochemical characteristics, and mutual conversion relationships of meteoric water, surface water, groundwater, and mine water (collectively referred to as the four water resources). Furthermore, this study established a three-dimensional storage and comprehensive allocation and utilization system for the four water resources in the open-pit mining area. Results and Conclusions The results indicate that the groundwater and mine water in the mining area were primarily recharged by meteoric water. Under the influence of open-pit coal mining, the regional groundwater loss reached 3 081.2×104 m3/a, leading to the formation of a groundwater depression cone with an average area of 15.26 km2 and a radius of approximately 1.88 km. Given the scarce meteoric water and intense evaporation in the area, the total groundwater loss in the mining area could exceed 40×108 m3/a. Accordingly, this study proposed a three-dimensional mine water storage framework, which involved five modes: surface storage, storage on the pit bottom and slopes, the reconstruction of ecological aquifers in the waste dump, water reinjection into the Quaternary loose aquifer, and water reinjection into the deep bedrock aquifer in the coal seam floor. By combining the water quality and quantity characteristics of the four water resources and the water demand of various water consumption sectors, this study proposed five water allocation and utilization pathways: production and ecological water use within the mining area, as well as domestic, industrial, agricultural, and ecological water use in surrounding areas. By constructing an allocation model for the four water resources using an improved genetic algorithm, this study established a three-dimensional storage and comprehensive allocation and utilization system characterized by four water resources, five storage modes, and five utilization pathways for the open-pit mining area. Combining the calculation results of the allocation model of the four water resources, this study developed a groundwater resource conservation philosophy for the mining area, which utilizes groundwater drained from mines as the water source, centers on water reinjection (365×104 m3/a) into the Quaternary aquifer outside the grouting curtain used to cut off water on the east slope, and stores water (20×104 m3) dynamically on the pit bottom and slopes. Simulation results indicate that the maximum rise in the groundwater table of the Quaternary aquifer outside the grouting curtain reached 1.54 m. This finding indicates that the philosophy can effectively reduce groundwater loss caused by open-pit coal mining and facilitate regional groundwater table rise. The results of this study hold significant theoretical implications and considerable engineering application value for the efficient storage, conservation, allocation, and utilization of open-pit mine water.

Keywords

open-pit mining, mutual conversion of four water resources, three-dimensional storage of mine water, water resource utilization, water resource conservation, a mining area in eastern Inner Mongolia

DOI

10.12363/issn.1001-1986.25.02.0089

Reference

[1] 中国煤炭工业协会. 2024煤炭行业发展年度报告[R]. 北京:煤炭工业出版社,2025.

[2] 才庆祥,陈彦龙. 中国露天煤矿70年成就回顾及高质量发展架构体系[J]. 煤炭学报,2024,49(1):235−260.

CAI Qingxiang,CHEN Yanlong. Review of 70 years’ achievements and high–quality development architecture system of surface coal mining in China[J]. Journal of China Coal Society,2024,49(1):235−260.

[3] 毕银丽,彭苏萍,杜善周. 西部干旱半干旱露天煤矿生态重构技术难点及发展方向[J]. 煤炭学报,2021,46(5):1355−1364.

BI Yinli,PENG Suping,DU Shanzhou. Technological difficulties and future directions of ecological reconstruction in open pit coal mine of the arid and semi–arid areas of Western China[J]. Journal of China Coal Society,2021,46(5):1355−1364.

[4] 孙亚军,陈歌,徐智敏,等. 我国煤矿区水环境现状及矿井水处理利用研究进展[J]. 煤炭学报,2020,45(1):304−316.

SUN Yajun,CHEN Ge,XU Zhimin,et al. Research progress of water environment,treatment and utilization in coal mining areas of China[J]. Journal of China Coal Society,2020,45(1):304−316.

[5] 田会,王忠鑫. 露天开采对环境的扰动行为及其控制技术[J]. 煤炭学报,2018,43(9):2416−2421.

TIAN Hui,WANG Zhongxin. Disturbance behavior of open–pit mine on environment and its control technology[J]. Journal of China Coal Society,2018,43(9):2416−2421.

[6] 李全生,李淋,方杰,等. 北方防沙带大型露天煤矿区生态保护与修复技术[J]. 煤炭科学技术,2024,52(1):323−333.

LI Quansheng,LI Lin,FANG Jie,et al. Ecological protection and restoration technology of large–scale open–pit coal mining area in the northern sand–proof belt[J]. Coal Science and Technology,2024,52(1):323−333.

[7] 李全生. 煤炭生态型露天开采理论与技术体系及其应用[J]. 煤炭学报,2024,49(5):2426−2444.

LI Quansheng. Theory and technical system of coal ecological open–pit mining and its application[J]. Journal of China Coal Society,2024,49(5):2426−2444.

[8] 董书宁,王海,黄选明,等. 基于保障生态地下水位的露天煤矿主动保水技术研究[J]. 煤炭科学技术,2021,49(4):49−57.

DONG Shuning,WANG Hai,HUANG Xuanming,et al. Research on active water conservation technology in open–pit coal mine based on ecological protection groundwater level[J]. Coal Science and Technology,2021,49(4):49−57.

[9] 孙亚军,崔思源,徐智敏,等. 西部典型侏罗系富煤区地下水补径排的同位素特征[J]. 煤炭学报,2017,42(2):293−299.

SUN Yajun,CUI Siyuan,XU Zhimin,et al. Characteristics of groundwater circulation condition and complementary diameter in typical Jurassic coal–rich area of Western China[J]. Journal of China Coal Society,2017,42(2):293−299.

[10] 李倩,马龙,刘廷玺,等. 采煤对海流兔流域大气降水–地表水–地下水–矿井水转化关系的影响[J]. 中国沙漠,2022,42(5):146−157.

LI Qian,MA Long,LIU Tingxi,et al. Conversion of precipitation,surface water,groundwater and mine water affected by coal mining in the Hailiutu River Basin,Inner Mongolia,China[J]. Journal of Desert Research,2022,42(5):146−157.

[11] 张玉卓,徐智敏,张莉,等. 山东新巨龙煤矿区场地高TDS地下水水化学特征及成因机制[J]. 煤田地质与勘探,2021,49(5):52−62.

ZHANG Yuzhuo,XU Zhimin,ZHANG Li,et al. Hydrochemical characteristics and genetic mechanism of high TDS groundwater in Xinjulong coal mine[J]. Coal Geology & Exploration,2021,49(5):52−62.

[12] ZHAO Jiangang,SONG Shuang,ZHANG Kai,et al. An investigation into the disturbance effects of coal mining on groundwater and surface ecosystems[J]. Environmental Geochemistry and Health,2023,45(10):7011−7031.

[13] 韩玉,卢文喜,李峰平,等. 浑河流域地表水地下水水质耦合模拟[J]. 中国环境科学,2020,40(4):1677−1686.

HAN Yu,LU Wenxi,LI Fengping,et al. Water quality coupling simulation of surface water and groundwater in Hunhe River Basin[J]. China Environmental Science,2020,40(4):1677−1686.

[14] 杨国敏,王力. 黑岱沟矿区排土场土壤水的氢氧稳定性同位素特征及入渗规律[J]. 煤炭学报,2015,40(4):944−950.

YANG Guomin,WANG Li. Characteristics of stable isotopes and infiltration rule of soil water at dumping site in Heidaigou opencast coal mine[J]. Journal of China Coal Society,2015,40(4):944−950.

[15] 李家叶,李铁键,王光谦,等. 空中水资源及其降水转化分析[J]. 科学通报,2018,63(26):2785−2796.

LI Jiaye,LI Tiejian,WANG Guangqian,et al. Atmospheric water resource and precipitation conversion[J]. Chinese Science Bulletin,2018,63(26):2785−2796.

[16] 王堂娃,吴景富,郑文田. 布沼坝露天矿975水平降段工程的技术措施[J]. 露天采矿技术,2007,22(2):27.

[17] 李全生. 东部草原区大型煤电基地开发的生态影响与修复技术[J]. 煤炭学报,2019,44(12):3625−3635.

LI Quansheng. Progress of ecological restoration and comprehensive remediation technology in large–scale coal–fired power base in the eastern grassland area of China[J]. Journal of China Coal Society,2019,44(12):3625−3635.

[18] 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.

[19] MA Liqiang,ZHANG Dongsheng,JIA Jinlong,et al. The recycling mode and technique of water in desertification area of Shendong coal mine[J]. Energy Procedia,2012,14:20−25.

[20] 曾一凡,刘晓秀,武强,等. 双碳背景下“煤–水–热”正效协同共采理论与技术构想[J]. 煤炭学报,2023,48(2):538−550.

ZENG Yifan,LIU Xiaoxiu,WU Qiang,et al. Theory and technical conception of coal–water–thermal positive synergistic co–extraction under the dual carbon background[J]. Journal of China Coal Society,2023,48(2):538−550.

[21] LIU Xiaoxiu,ZENG Yifan,WU Qiang,et al. Ecological–based mining:A coal–water–thermal collaborative paradigm in ecologically fragile areas in Western China[J]. Engineering,2024,38:209−222.

[22] ZENG Yifan,MENG Shihao,WU Qiang,et al. Ecological water security impact of large coal base development and its protection[J]. Journal of Hydrology,2023,619:129319.

[23] 杜勇志,范业承,刘昊,等. “水量平衡分析”的露天煤矿水资源综合利用途径[J]. 中国矿业,2021,30(增刊1):94−100.

DU Yongzhi,FAN Yecheng,LIU Hao,et al. Comprehensive utilization of water resources in open pit coal mine based on“water balance analysis”[J]. China Mining Magazine,2021,30(Sup.1):94−100.

[24] 国家发展改革委,水利部,自然资源部,等. 关于加强矿井水保护和利用的指导意见[Z]. 北京:中华人民共和国国家发展和改革委员会,2024.

[25] 赵春虎,王明星,曹海东,等. 露天煤矿开采侧向帷幕控水原理与截水效果数值分析:以元宝山露天煤矿为例[J]. 煤田地质与勘探,2022,50(7):10−17.

ZHAO Chunhu,WANG Mingxing,CAO Haidong,et al. Water control principle of lateral water cutoff curtain and numerical analysis of its water interception effect in Yuanbaoshan open–pit coal mine[J]. Coal Geology & Exploration,2022,50(7):10−17.

[26] 高胜,李国志,郭英杰,等. 截水帷幕技术在元宝山露天煤矿的应用与效果评价[J]. 煤田地质与勘探,2022,50(7):28−35.

GAO Sheng,LI Guozhi,GUO Yingjie,et al. Application and effect evaluation of water cutoff curtain technology in Yuanbaoshan open–pit coal mine[J]. Coal Geology & Exploration,2022,50(7):28−35.

[27] 黄选明,张雁,王明星,等. 我国露天煤矿截水帷幕关键技术进展[J]. 煤田地质与勘探,2022,50(7):1−9.

HUANG Xuanming,ZHANG Yan,WANG Mingxing,et al. Key technical progress of water cutoff curtain technology in open–pit coal mines in China[J]. Coal Geology & Exploration,2022,50(7):1−9.

[28] 王海,黄选明,朱明诚,等. 露天矿煤层裂隙注浆材料性能与帷幕截流技术[J]. 煤炭科学技术,2020,48(11):241−247.

WANG Hai,HUANG Xuanming,ZHU Mingcheng,et al. Study on grouting material performance and water–blacking curtain wall technology injection to coal seam in open coal mine[J]. Coal Science and Technology,2020,48(11):241−247.

[29] 王晨光,高胜,牛光亮. 元宝山露天煤矿疏排水现状与帷幕截水实施效果[J]. 煤炭工程,2023,55(11):77−82.

WANG Chenguang,GAO Sheng,NIU Guangliang. Present situation of drainage and implementation effect of water cutoff curtain in Yuanbaoshan open–pit coal mine[J]. Coal Engineering,2023,55(11):77−82.

[30] 王海,王永刚,张雁,等. 生态脆弱露天矿区截水帷幕下松散层水位演化规律[J]. 煤田地质与勘探,2022,50(7):36−43.

WANG Hai,WANG Yonggang,ZHANG Yan,et al. Water level evolution pattern of loose layers under water cutoff curtain in ecologically fragile open–pit mines[J]. Coal Geology & Exploration,2022,50(7):36−43.

[31] 武强,赵苏启,董书宁,等. 煤矿防治水手册[M]. 北京:煤炭工业出版社,2013.

[32] 熊小锋,徐智敏,陈歌,等. 一种露天矿疏排水回注保水采煤技术与优化方法:202411450777. 8[P]. 2025-04-15.

[33] 罗安昆,李瑾,杨建,等. 煤炭开采对干旱半干旱地区地下水资源的影响[J]. 煤矿安全,2018,49(12):216−220.

LUO Ankun,LI Jin,YANG Jian,et al. Influence of coal mining on underground water resources in arid and semiarid region[J]. Safety in Coal Mines,2018,49(12):216−220.

[34] 杨蕴,宋健,朱琳,等. 基于KELM地面沉降替代模型的地下水多目标管理模型研究[J]. 南京大学学报(自然科学),2019,55(3):349−360.

YANG Yun,SONG Jian,ZHU Lin,et al. Surrogate model based multi–objective optimization model for land subsidence management[J]. Journal of Nanjing University (Natural Science),2019,55(3):349−360.

[35] 赵洁,林锦,吴剑锋,等. 大连周水子海水入侵区地下水多目标优化管理模型[J]. 水文地质工程地质,2017,44(5):25−32.

ZHAO Jie,LIN Jin,WU Jianfeng,et al. A multi–objective simulation–optimization model for optimal control of seawater intrusion in the Zhoushuizi district of Dalian[J]. Hydrogeology & Engineering Geology,2017,44(5):25−32.

[36] CHENG Chao,GAO Dan,ZHANG Heng,et al. Superstructure optimization models for regional coal industry development considering water resources constraints:A case study of Ordos,China[J]. Computers & Chemical Engineering,2023,178:108384.

[37] 骆祖江,李兆,任虎俊. 矿井涌水量预测数值模拟研究[J]. 煤炭科学技术,2015,43(1):33−36.

LUO Zujiang,LI Zhao,REN Hujun. Numerical simulation research on prediction of mine inflow[J]. Coal Science and Technology,2015,43(1):33−36.

Share

COinS
 
 

To view the content in your browser, please download Adobe Reader or, alternately,
you may Download the file to your hard drive.

NOTE: The latest versions of Adobe Reader do not support viewing PDF files within Firefox on Mac OS and if you are using a modern (Intel) Mac, there is no official plugin for viewing PDF files within the browser window.