[1] 顾大钊, 李井峰, 曹志国, 等. 我国煤矿矿井水保护利用发展战略与工程科技 [J]. 煤炭学报, 2021, 46(10): 3079-3089. GU D Z, LI J F, CAO Z G, et al. Technology and engineering development strategy of water protection and utilization of coal mine in China [J]. Journal of China Coal Society, 2021, 46(10): 3079-3089(in Chinese).
[2] 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 D Z, ZHANG Y, CAO Z G. Technical progress of water resource protection and utilization by coal mining in China [J]. Coal Science and Technology, 2016, 44(1): 1-7(in Chinese).
[3] 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 D Z, LI T, LI J F, et al. Current status and prospects of coal mine water treatment technology in China [J]. Coal Science and Technology, 2021, 49(1): 11-18(in Chinese).
[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 Y J, CHEN G, XU Z M, 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(in Chinese).
[5] 孙亚军, 徐智敏, 李鑫, 等. 我国煤矿区矿井水污染问题及防控技术体系构建 [J]. 煤田地质与勘探, 2021, 49(5): 1-16. SUN Y J, XU Z M, LI X, et al. Mine water drainage pollution in China's coal mining areas and the construction of prevention and control technical system [J]. Coal Geology & Exploration, 2021, 49(5): 1-16(in Chinese).
[6] 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 Y J, ZHANG M F, GAO S, 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(in Chinese).
[7] 孙亚军, 张莉, 徐智敏, 等. 煤矿区矿井水水质形成与演化的多场作用机制及研究进展 [J]. 煤炭学报, 2022, 47(1): 423-437. SUN Y J, ZHANG L, XU Z M, et al. Multi-field action mechanism and research progress of coal mine water quality formation and evolution [J]. Journal of China Coal Society, 2022, 47(1): 423-437(in Chinese).
[8] 王建, 韩海东, 许君利, 等. 塔里木河流域出山径流水化学特征研究 [J]. 中国环境科学, 2021, 41(4): 1576-1587. WANG J, HAN H D, XU J L, et al. Hydrochemical characteristics of the mountain runoff in Tarim River Basin, China [J]. China Environmental Science, 2021, 41(4): 1576-1587(in Chinese).
[9] 罗珍, 仁增拉姆, 陈虎林, 等. 西藏巴松措冷季水化学特征及其影响因素 [J]. 中国环境科学, 2021, 41(9): 4263-4270. LUO Z, REN Z, CHEN H L, et al. Hydrochemical characteristics and its controlling factors of Basong Lake in cold season in Tibet [J]. China Environmental Science, 2021, 41(9): 4263-4270(in Chinese).
[10] 刘鑫, 向伟, 马小军, 等. 黄土高原中部浅层地下水化学特征及影响因素 [J]. 中国环境科学, 2021, 41(11): 5201-5209. LIU X, XIANG W, MA X J, et al. Hydrochemical characteristics and controlling factors of shallow groundwater in the Chinese Loess Plateau [J]. China Environmental Science, 2021, 41(11): 5201-5209(in Chinese).
[11] 刘敏, 赵良元, 李青云, 等. 长江源区主要河流水化学特征、主要离子来源 [J]. 中国环境科学, 2021, 41(3): 1243-1254. LIU M, ZHAO L Y, LI Q Y, et al. Hydrochemical characteristics, main ion sources of main rivers in the source region of Yangtze River [J]. China Environmental Science, 2021, 41(3): 1243-1254(in Chinese).
[12] 郝春明, 张伟, 何瑞敏, 等. 神东矿区高氟矿井水分布特征及形成机制 [J]. 煤炭学报, 2021, 46(6): 1966-1977. HAO C M, ZHANG W, HE R M, et al. Formation mechanisms for elevated fluoride in the mine water in Shendong coal-mining district [J]. Journal of China Coal Society, 2021, 46(6): 1966-1977(in Chinese).
[13] 赵峰华, 郭元, 孙红福, 等. 辛置煤矿主要含水层的自由排水柱淋滤实验与水岩作用机理 [J]. 煤炭学报, 2019, 44(4): 1207-1215. ZHAO F H, GUO Y, SUN H F, et al. Free draining column leaching experiment and mechanism of water-rock interaction in main aquifer of Xinzhi coal mine [J]. Journal of China Coal Society, 2019, 44(4): 1207-1215(in Chinese).
[14] WANG T T, JIN D W, YANG J, et al. Assessing mine water quality using a hierarchy fuzzy variable sets method: A case study in the Guojiawan mining area, Shaanxi Province, China [J]. Environmental Earth Sciences, 2019, 78(8): 264. doi: 10.1007/s12665-019-8216-1
[15] 王甜甜, 张雁, 赵伟, 等. 伊敏矿区地下水水化学特征及其形成作用分析 [J]. 环境化学, 2021, 40(5): 1480-1489. WANG T T, ZHANG Y, ZHAO W, et al. Hydrogeochemical characteristics and formation process of groundwater in Yimin mining area [J]. Environmental Chemistry, 2021, 40(5): 1480-1489(in Chinese).
[16] 李福勤, 杨静, 何绪文, 等. 高铁高锰矿井水水质特征及其净化机制 [J]. 煤炭学报, 2006, 31(6): 727-730. LI F Q, YANG J, HE X W, et al. Characteristics and treatment mechanism of mine water with high concentration of iron and manganese [J]. Journal of China Coal Society, 2006, 31(6): 727-730(in Chinese).
[17] 王双明, 段中会, 马丽, 等. 西部煤炭绿色开发地质保障技术研究现状与发展趋势 [J]. 煤炭科学技术, 2019, 47(2): 1-6. WANG S M, DUAN Z H, MA L, et al. Research status and future trends of geological assurance technology for coal green development in Western China [J]. Coal Science and Technology, 2019, 47(2): 1-6(in Chinese).
[18] 姚峰, 古丽·加帕尔, 包安明, 等. 基于遥感技术的干旱荒漠区露天煤矿植被群落受损评估 [J]. 中国环境科学, 2013, 33(4): 707-713. YAO F, GULI·J, BAO A M, et al. Damage assessment of the vegetable types based on remote sensing in the open coalmine of arid desert area [J]. China Environmental Science, 2013, 33(4): 707-713(in Chinese).
[19] 马超, 田淑静, 邹友峰, 等. 神东矿区AVHRR/NDVI的时空、开采强度和气候效应 [J]. 中国环境科学, 2016, 36(9): 2749-2756. MA C, TIAN S J, ZOU Y F, et al. Dynamic responses of the coalfield ecosystem to mining intensity, spatio-temporal variation, and climate change derived from AVHRR/NDVI in Shendong coalfield [J]. China Environmental Science, 2016, 36(9): 2749-2756(in Chinese).
[20] 赵河聚, 成龙, 贾晓红, 等. 高寒沙区生物土壤结皮覆盖土壤碳释放动态 [J]. 生态学报, 2020, 40(18): 6396-6404. ZHAO H J, CHENG L, JIA X H, et al. The dynamics of soil carbon release covered with biological soil crusts in Alpine sand area [J]. Acta Ecologica Sinica, 2020, 40(18): 6396-6404(in Chinese).
[21] 张泽源. 新上海一号煤矿宝塔山砂岩含水层地下水疏降优化研究[D]. 北京: 煤炭科学研究总院, 2021. ZHANG Z Y. Study on Groundwater Drainage Technology of Baotashan Sandstone Aquifer in New Shanghai No. 1 Coal Mine[J]. Beijing: China Coal Reasearch Institute, 2021.
[22] 吕玉广, 肖庆华, 程久龙. 弱富水软岩水-沙混合型突水机制与防治技术: 以上海庙矿区为例 [J]. 煤炭学报, 2019, 44(10): 3154-3163. LÜ Y G, XIAO Q H, CHENG J L. Mechanism and prevention of water-sand inrush in soft rock with weakly abundant water: A case study in Shanghai temple mining area [J]. Journal of China Coal Society, 2019, 44(10): 3154-3163(in Chinese).
[23] HAN G L, LIU C Q. Water geochemistry controlled by carbonate dissolution: A study of the river waters draining Karst-dominated terrain, Guizhou Province, China [J]. Chemical Geology, 2004, 204(1/2): 1-21.
[24] 杨婷婷, 许光泉, 余世滔, 等. 煤层下部太原组岩溶水化学组分特征及其成因分析 [J]. 水文地质工程地质, 2019, 46(2): 100-108. YANG T T, XU G Q, YU S T, et al. An analysis of the chemical composition characteristics and formation of the Karst groundwater in the Taiyuan Group in the lower part of a coal seam [J]. Hydrogeology & Engineering Geology, 2019, 46(2): 100-108(in Chinese).
[25] GIBBS R J. Mechanisms controlling world water chemistry [J]. Science, 1970, 170(3962): 1088-1090. doi: 10.1126/science.170.3962.1088
[26] GIBBS R J. Water chemistry of the Amazon River [J]. Geochimica et Cosmochimica Acta, 1972, 36(9): 1061-1066. doi: 10.1016/0016-7037(72)90021-X
[27] 刘江涛, 蔡五田, 曹月婷, 等. 沁河冲洪积扇地下水水化学特征及成因分析 [J]. 环境科学, 2018, 39(12): 5428-5439. LIU J T, CAI W T, CAO Y T, et al. Hydrochemical characteristics of groundwater and the origin in alluvialproluvial fan of Qinhe River [J]. Environmental Science, 2018, 39(12): 5428-5439(in Chinese).
[28] SCHOELLER H. Qualitative evaluation of groundwater resources: methods and techniques of groundwater investigation and development [J]. Water Research, 1965, 33: 5483-5516.
[29] 李书鉴, 韩晓, 王文辉, 等. 无定河流域地表水地下水的水化学特征及控制因素 [J]. 环境科学, 2022, 43(1): 220-229. LI S J, HAN X, WANG W H, et al. Hydrochemical characteristics and controlling factors of surface water and groundwater in Wuding River Basin [J]. Environmental Science, 2022, 43(1): 220-229(in Chinese).
[30] 郑涛, 焦团理, 胡波, 等. 涡河流域中部地区地下水化学特征及其成因分析 [J]. 环境科学, 2021, 42(2): 766-775. ZHENG T, JIAO T L, HU B, et al. Hydrochemical characteristics and origin of groundwater in the central guohe river basin [J]. Environmental Science, 2021, 42(2): 766-775(in Chinese).
[31] 陈陆望, 许冬清, 殷晓曦, 等. 华北隐伏型煤矿区地下水化学及其控制因素分析: 以宿县矿区主要突水含水层为例 [J]. 煤炭学报, 2017, 42(4): 996-1004. CHEN L W, XU D Q, YIN X X, et al. Analysis on hydrochemistry and its control factors in the concealed coal mining area in North China: A case study of dominant inrush aquifers in Suxian mining area [J]. Journal of China Coal Society, 2017, 42(4): 996-1004(in Chinese).
[32] 孙厚云, 毛启贵, 卫晓锋, 等. 哈密盆地地下水系统水化学特征及形成演化 [J]. 中国地质, 2018, 45(6): 1128-1141. SUN H Y, MAO Q G, WEI X F, et al. Hydrogeochemical characteristics and formation evolutionary mechanism of the groundwater system in the Hami Basin [J]. Geology in China, 2018, 45(6): 1128-1141(in Chinese).
[33] XING L N, GUO H M, ZHAN Y H. Groundwater hydrochemical characteristics and processes along flow paths in the North China Plain [J]. Journal of Asian Earth Sciences, 2013, 70/71: 250-264. doi: 10.1016/j.jseaes.2013.03.017
[34] ZHU B Q, YANG X P, RIOUAL P, et al. Hydrogeochemistry of three watersheds (the Erlqis, Zhungarer and Yili) in northern Xinjiang, NW China [J]. Applied Geochemistry, 2011, 26(8): 1535-1548. doi: 10.1016/j.apgeochem.2011.06.018
[35] GAILLARDET J, DUPRÉ B, LOUVAT P, et al. Global silicate weathering and CO2 consumption rates deduced from the chemistry of large rivers [J]. Chemical Geology, 1999, 159(1/2/3/4): 3-30.
[36] 赵宝峰, 吕玉广. 新上海一号井田水文地球化学特征及控制因素 [J]. 干旱区资源与环境, 2022, 36(3): 92-98. ZHAO B F, LV Y G. Hydrogeochemical characteristics and main controlling factors of Xinshanghai No. 1 coal field [J]. Journal of Arid Land Resources and Environment, 2022, 36(3): 92-98(in Chinese).
[37] MAHATO M K, SINGH P K, SINGH A K, et al. Assessment of hydrogeochemical processes and mine water suitability for domestic, irrigation, and industrial purposes in east bokaro coalfield, India [J]. Mine Water and the Environment, 2018, 37(3): 493-504. doi: 10.1007/s10230-017-0508-7
[38] SINGH A K, MONDAL G C, SINGH T B, et al. Hydrogeochemical processes and quality assessment of groundwater in Dumka and Jamtara districts, Jharkhand, India [J]. Environmental Earth Sciences, 2012, 67(8): 2175-2191. doi: 10.1007/s12665-012-1658-3
[39] 毛萌, 朱雪芹. 宣化盆地地下水化学特性及灌溉适用性评价 [J]. 干旱区资源与环境, 2020, 34(7): 142-149. MAO M, ZHU X Q. Chemical characteristics of groundwater in Xuanhua Basin and assessment of irrigation applicability [J]. Journal of Arid Land Resources and Environment, 2020, 34(7): 142-149(in Chinese).
[40] SEN Z. Practical and Applied Hydrogeology[M]. Elsevier, 2015.