山底河流域煤矿酸性矿井水野外监测

唐春雷, 梁永平, 晋华, 赵春红, 申豪勇, 王志恒, 赵一, 谢浩, 梁琛. 山底河流域煤矿酸性矿井水野外监测[J]. 中国岩溶, 2022, 41(4): 522-531. doi: 10.11932/karst20220402
引用本文: 唐春雷, 梁永平, 晋华, 赵春红, 申豪勇, 王志恒, 赵一, 谢浩, 梁琛. 山底河流域煤矿酸性矿井水野外监测[J]. 中国岩溶, 2022, 41(4): 522-531. doi: 10.11932/karst20220402
TANG Chunlei, LIANG Yongping, JIN Hua, ZHAO Chunhong, SHEN Haoyong, WANG Zhiheng, ZHAO Yi, XIE Hao, LIANG CHEN. Overview of field monitoring for acid mine water system of the coal mine in Shandi river basin[J]. Carsologica Sinica, 2022, 41(4): 522-531. doi: 10.11932/karst20220402
Citation: TANG Chunlei, LIANG Yongping, JIN Hua, ZHAO Chunhong, SHEN Haoyong, WANG Zhiheng, ZHAO Yi, XIE Hao, LIANG CHEN. Overview of field monitoring for acid mine water system of the coal mine in Shandi river basin[J]. Carsologica Sinica, 2022, 41(4): 522-531. doi: 10.11932/karst20220402

山底河流域煤矿酸性矿井水野外监测

  • 基金项目: 广西自然科学基金面上项目(2021GXNSFAA220071);国家自然科学基金项目(41672253,41902256);中国地质调查项目(DD20221758, DD20190334, DD20190825);中国地质科学院基本科研项目(2020010,2021006)
详细信息
    作者简介: 唐春雷(1984-),男,副研究员,岩溶水文地质环境地质、岩溶环境学。E-mail: yourfriendtcl@ 163.com
  • 中图分类号: P641.4

Overview of field monitoring for acid mine water system of the coal mine in Shandi river basin

  • 酸性矿井水在我国鲁西南、山西、内蒙、云南和贵州等煤矿区普遍存在,酸性矿井水其pH往往在2~5之间,高SO42−、HB、TDS、Fe、Mn。这些物质进入地下水、地表水或土壤后,会对其造成严重危害。文章选择山西阳泉市典型废弃煤矿区山底河流域为研究区,通过水文地质调查,水文地质钻探,水文地质剖面等方法阐述山底流域地层岩性,水文地质条件概况,得出受煤矿开采影响,与天然条件下相比山底河流域的地表水和地下水的补给、径流、排泄条件均发生了根本变化。补给通过破坏产生的导水裂隙带运移,以垂向运动为主;径流通过坑道,导水裂隙带运移,以横向运动为主;排泄以矿坑排水和泉水溢出方式为主。并简述山底河流域煤矿酸性矿井水试验站观测站分布情况与水化学特征。

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  • 图 1  山底河流域水文地质图

    Figure 1. 

    图 2  山底河流域水文地质剖面图

    Figure 2. 

    图 3  山底河流域煤矿老窑水循环系统监测网分布图(据梁永平等[24]修改)

    Figure 3. 

    图 4  山底河煤矿酸性排水野外监测站野外照片

    Figure 4. 

    图 5  AMD的Durov三线图

    Figure 5. 

    图 6  AMD主排泄点流量图

    Figure 6. 

    图 7  山底河流域总出口流量图

    Figure 7. 

    表 1  山底河流域煤矿酸性水循环试验站水质及流量监测点汇总表

    Table 1.  Summary of water quality and flow monitoring points of acid water circulation test station of coal mines in Shandi river basin

    站点名称 监测点
    类别
    监测点
    高程/m
    监测内容
    山底站 降水 864 降水量/mm
    西沟站 降水 973
    榆林垴钻孔 矿坑水 991.5 pH、水温、电导率、溶解氧、Ca2+、Mg2+、K+、Na+、NH4+、Fe2+、Fe3+、Cl、SO42−、CO32−、HCO3、Mn、溶解性总固体等
    小沟露天矿 矿坑水 857
    庙沟泉 矿坑水 865
    柳沟泉 矿坑水 832
    山底河高桥堰 矿坑水 827
    跃进煤矿岩溶井 岩溶水 908
    山底村岩溶井 岩溶水 830
    河底镇岩溶井 岩溶水 836
    柳沟观测堰 矿坑水 831 主排泄点流量
    山底河高桥观测堰 矿坑水 827 总出口流量(地表水+主排泄点)
    温河入口观测堰 矿坑水 803.1 入温河口流量(地表水+主排泄点-灰岩段渗漏量)
    下载: 导出CSV
  • [1]

    武强, 刘宏磊, 赵海卿, 张萌, 刘守强. 解决矿山环境问题的九节鞭[J]. 煤炭学报, 2019, 44(1):10-22.

    WU Qiang, LIU Honglei, ZHAO Haiqing, ZHANG Meng. LIU Shouqiang. Discussion on the nine aspects of addressing environmental problems of mining[J]. Journal of China Coal Society, 2019, 44(1):10-22.

    [2]

    唐春雷, 郑秀清, 梁永平. 龙子祠泉域岩溶地下水水化学特征及成因[J]. 环境科学, 2020, 41(5):2087-2095. doi: 10.13227/j.hjkx.201910078

    TANG Chunlei, ZHENG Xiuqing, LIANG Yongping. Hydrochemical characteristics and formation causes of ground karst water systems in the Longzici spring catchment[J]. Environmental Science, 2020, 41(5):2087-2095. doi: 10.13227/j.hjkx.201910078

    [3]

    谢芳, 衰老矿井循环经济发展模式研究[D]. 青岛: 山东科技大学, 2008.

    XIE Fang, Studies on the development model of circular economy in declined mine[D]. Qingdao: Shandong University of science and technology, 2008.

    [4]

    张立宽, 武强. 新中国70年煤炭工业铸就十大辉煌[J]. 中国能源, 2019, 41(10):4-8.

    ZHANG Liquan, WU Qiang. Ten brilliance created by the coal industry within 70 years[J]. China of Energy, 2019, 41(10):4-8.

    [5]

    陆文娟. 2013年全国资源枯竭城市转型与发展论坛会议综述[J]. 全国商情, 2013(24):8-9.

    LU Wenjuan. Summary of 2013 National Forum on transformation and development of resource exhausted cities[J]. China Circulation Economy, 2013(24):8-9.

    [6]

    武强, 涂坤. 我国发展面临能源与环境的双重约束分析及对策思考[J]. 科学通报, 2019, 64(15):1535-1544. doi: 10.1360/N972018-01057

    WU Qiang, TU Kun. Analysis and countermeasures of China's development facing the dual constraints of energy and environment[J]. Chian Science Bulletin, 2019, 64(15):1535-1544. doi: 10.1360/N972018-01057

    [7]

    曹金亮, 张建萍, 王刚, 段丽军, 樊燕. 山西省矿山地质环境问题特征[J]. 华北自然资源, 2019(1):102-103.

    CAO Jinliang, ZHANG Jianping, WANG Gang, DUAN Lijun, FAN Yan. Characteristics of mine geological environment problems in Shanxi Province[J]. Huabei Natural Resources, 2019(1):102-103.

    [8]

    李鹏飞. 山西八分之一土地成采空区[J]. 共产党员, 2011(21):49.

    LI Pengfei. One eighth of the land in Shanxi is mined out area[J]. Communist Party Member, 2011(21):49.

    [9]

    李凤明, 王儒军, 王存煜. 资源枯竭型矿区综合治理与可持续发展[J]. 煤矿开采, 2004(3):7-10. doi: 10.3969/j.issn.1006-6225.2004.03.003

    LI Fengming, WANG rujun, WANG Cunyu. Synthetically control and continuable development of resource exhausted mine area[J]. Coal Mining Technology, 2004(3):7-10. doi: 10.3969/j.issn.1006-6225.2004.03.003

    [10]

    贺秀全, 曹金亮, 许枝. 山西煤矿采空区塌陷地震特征与预报研究[J]. 中国地质灾害与防治学报, 1997(S1):116-121.

    HE Xiuquan, CAO Jinliang, XU Zhi. Study on the Feature of collapse Earth quake Cause by Coal Ming and its forecast, Shanxi[J]. The Chinese Journal of Geological Hazard and Control, 1997(S1):116-121.

    [11]

    Kiiskila J D, LI Kefeng, Sarkar D , Datta R. Metabolic response of vetiver grass (Chrysopogon zizanioides) to acid mine drainage[J]. Chemosphere, 2020, 240:124961.

    [12]

    Ren K , Zeng J , Liang J, Yuang D X , Jiao Y J, Peng C , Pan X D. Impacts of acid mine drainage on karst aquifers: Evidence from hydrogeochemistry, stable sulfur and oxygen isotopes[J]. Science of The Total Environment, 2020.

    [13]

    A Kastyuchik, A Karam, Ader Mohammed. The effect of electro-activation and eggshell powder on the neutralization of acid mine drainage[J]. Journal of Sustainable Mining, 2017, 16(3):73-82. doi: 10.1016/j.jsm.2017.09.002

    [14]

    赵峰华, 煤矿酸性水地球化学[M]. 北京: 煤炭工业出版社, 2005.

    ZHAO Fenghua. Geo-chemistry of acid water in coal mine [M]. Beijing: Coal Industry Press, 2005.

    [15]

    N F Gray. Acid mine drainage composition and the implications for its impact on lotic systems[J]. Water Research, 1998, 32(7):2122-2134. doi: 10.1016/S0043-1354(97)00449-1

    [16]

    I S Chang, P K Shin, B H Kim. Biological treatment of acid mine drainage under sulphate-reducing conditions with solid waste materials as substrate[J]. Water Research, 2000, 34(4):1269-1277. doi: 10.1016/S0043-1354(99)00268-7

    [17]

    M D González-Martínez, C Huguet, J Pearse, N Mcintyre, L A Camacho. Assessment of potential contamination of Paramo soil and downstream water supplies in a coal-mining region of Colombia[J]. Applied Geochemistry, 2019, 108:104382. doi: 10.1016/j.apgeochem.2019.104382

    [18]

    J Zhang, F Liu, H Huang, R Wang, B Xu. Occurrence, risk and influencing factors of polycyclic aromatic hydrocarbons in surface soils from a large-scale coal mine, Huainan, China[J]. Ecotoxicology and Environmental Safety, 2020, 192:110269. doi: 10.1016/j.ecoenv.2020.110269

    [19]

    梁永平, 赵春红, 唐春雷, 申豪勇, 王志恒, 郭芳芳. 山西娘子关泉水及污染成因再分析[J]. 中国岩溶, 2017, 36 (5): 633-640.

    LIANG Yongping, ZHAO Chunhong, TANG Chunlei, WANG Zhiheng, GUO Fangfang. Reanalysis on water and pollution causes of Niangziguan Spring in Shanxi Province [J] Carsologica Sinica, 2017, 36 (5): 633-640.

    [20]

    唐春雷, 郑秀清, 梁永平, 张发旺, 景泽. 山西太原晋祠—平泉水力联系及对晋祠泉复流的贡献[J]. 中国地质, 2020, 47(6):1755-1764. doi: 10.12029/gc20200612

    TANG Chunlei, ZHENG Xiuqing, LIANG Yongping, ZHANG Fawang,JING ze. The hydraulic connection between Jinci and Pingquan in Taiyuan and its contribution to the reflow of Jinci spring[J]. Geology in China, 2020, 47(6):1755-1764. doi: 10.12029/gc20200612

    [21]

    唐春雷, 梁永平, 王维泰, 赵春红, 申豪勇. 龙子祠泉域岩溶水水化学-同位素特征[J]. 桂林理工大学学报, 2017, 37(1):53-58. doi: 10.3969/j.issn.1674-9057.2017.01.007

    TANG Chunlei, LIANG Yongping, WANG Weitai, ZHAO Chunhong, SHEN Haoyong. Hydrogeochemical and isotopic Characteristic of the karst Groundwater Systems, in Longzici spring basin[J]. Journal of Guilin University of Technology, 2017, 37(1):53-58. doi: 10.3969/j.issn.1674-9057.2017.01.007

    [22]

    唐春雷, 赵春红, 申豪勇, 梁永平, 王志恒. 娘子关泉群水化学特征及成因[J]. 环境科学, 2021, 42(3):1416-1423. doi: 10.13227/j.hjkx.202007047

    TANG Chunlei, ZHAO Chunhong, SHEN Haoyong, LIANG Yongping, WANG Zhiheng. Chemical characteristics and causes of groups water in Niangziguan Spring[J]. Environmental Science, 2021, 42(3):1416-1423. doi: 10.13227/j.hjkx.202007047

    [23]

    C Tang, H Jin, Y Liang. Using Isotopic and Hydrochemical Indicators to Identify Sources of Sulfate in Karst Groundwater of the Niangziguan Spring Field, China[J]. Water, 2021, 13(3):390. doi: 10.3390/w13030390

    [24]

    梁永平, 申豪勇, 赵春红, 王志恒, 唐春雷. 对中国北方岩溶水研究方向的思考与实践[J]. 中国岩溶, 2021, 40(3):363-380.

    LIANG Yongping, SHEN Haoyong, ZHAO Chunhong, WANG Zhiheng, TANG Chunlei. Thinking and practice on the research direction of karst water in northern China[J]. Carsologica Sinica, 2021, 40(3):363-380.

    [25]

    唐春雷, 晋华, 梁永平, 王志恒, 唐春雷. 娘子关泉域岩溶地下水位变化特征及成因[J]. 中国岩溶, 2020, 39(6):810-816.

    TANG Chunlei, JIN Hua, LIANG Yongping, WANG Zhiheng, TANG Chunlei. Characteristics and Formation causes of Karst Groundwater Level variation in Niangziguan Spring Area[J]. Carsologica Sinica, 2020, 39(6):810-816.

    [26]

    韩行瑞, 高红波, 梁永平, 时坚. 大规模采煤对岩溶区水环境的影响[J]. 中国岩溶, 1994, 13(2):95-105.

    HAN Xingrui, GAO Hongbo, LIANG Yongping, SHI Jian. The effect of large-scale coal mining on karst water environment[J]. Carsologica Sinica, 1994, 13(2):95-105.

    [27]

    P Singer. Acid mine drainage: The rate-limiting step[J]. Science, 1970, 167(2):1121-1123.

    [28]

    R L P Kleinmann, D A Crerar, R R Pacelli. Biogeo-chemistry of acid mine drainage and a method to control acid formation[J]. Mining Engineering, 2019, 33:300-306.

    [29]

    M B Goldhaber. Experimental study of metastable sulfur oxyanion formation during pyrite oxidation at pH 6-9 and 30 ℃[J]. American Journal of Science, 1983, 283(3):193-217. doi: 10.2475/ajs.283.3.193

    [30]

    Carl O Moses, D Kirk Nordstrom , Janet S Herman , Aaron L Mills. Aqueous pyrite oxidation by dissolved oxygen and by ferric iron[J]. Geochimica et Cosmochimica Acta 1987, 51(6): 1561-1571.

    [31]

    L C Bryner, A K Jameson. Microorganisms in leaching sulfide minerals[J]. Applied Microbiology, 1958, 6(4):281-287. doi: 10.1128/am.6.4.281-287.1958

    [32]

    L Bryner, R Anderson. Microorganisms in leaching sulfide minerals[J]. Industrial & Engineering Chemistry, 1957, 49(10):1721-1724.

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收稿日期:  2022-02-20
刊出日期:  2022-08-25

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