2024 Vol. 45, No. 3
Article Contents

WEN Bangyong, ZHU Ximin, GAO Yuan, CHENG Huiming, XIAO Yebin. 2024. Comprehensive evaluation index system for mine environment in the upper-middle reaches of Le'an River, Jiangxi Province. East China Geology, 45(3): 345-356. doi: 10.16788/j.hddz.32-1865/P.2023.06.002
Citation: WEN Bangyong, ZHU Ximin, GAO Yuan, CHENG Huiming, XIAO Yebin. 2024. Comprehensive evaluation index system for mine environment in the upper-middle reaches of Le'an River, Jiangxi Province. East China Geology, 45(3): 345-356. doi: 10.16788/j.hddz.32-1865/P.2023.06.002

Comprehensive evaluation index system for mine environment in the upper-middle reaches of Le'an River, Jiangxi Province

  • To study the comprehensive evaluation index system for regional mining environment, this paper took the upper-middle reaches of Le’an River as a case study and selected 15 indicators from natural geography, basic geology, mine exploitation and geological environment, and used the grid of 1.0×1.0 km as the evaluation unit. The evaluation employed analytical hierarchy process-comprehensive index method, the results of which show that there are 18 units in the most severely affected area (grade 4) in the study area, mainly distributed in the mining areas of copper and gold deposits. There are 107 units in the severely affected area (grade 3), mainly distributed in the mining areas of coal mines and the non-mining areas outside the copper and gold deposits. The field survey verified that the comprehensive evaluation results were highly consistent with the actual situation, proving a certain practical value of the evaluation index system, which can provide reference for regional mine environmental assessment on metals deposits and coal mines.

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  • [1] BUBNOVA M B, OZARYAN Y A. 2016. Integrated assessment of the environmental impact of mining[J]. Journal of Mining Science,52(2):401-409. doi: 10.1134/S1062739116020574

    CrossRef Google Scholar

    [2] CHAI Y, MENG G T, FANG X J, LI G X, HE L P, TANG H Y, WANG X Y, YANG Y X. 2004. Community feature of degraded forest along the reaches of Jinshajiang in Yunnan Province[J]. Journal of Northwest Forestry University,19(2):146-151 (in Chinese with English abstract).

    Google Scholar

    [3] CHEN J Q. 2017. Mine geological environment survey and evaluation based on RS and GIS[D]. Beijing: China University of Geosciences (Beijing) (in Chinese with English abstract).

    Google Scholar

    [4] CHEN Z F, WU J, GUO Y B, LIN T. 2018. Application of AHP and fuzzy mathematics in comprehensive assessment of mine environment[J]. East China Geology,39(4):305-310 (in Chinese with English abstract).

    Google Scholar

    [5] CHENG Y H, JIN R S, CUNEY M, PETROV V A, MIAO P S. 2024. The strata constraint on large scale sandstone- type uranium mineralization in Meso- Cenozoic basins, northern China[J]. Acta Geologica Sinica,98(7):1953-1976. (in Chinese with English abstract).

    Google Scholar

    [6] CHINA GEOLOGICAL SURVEY. 2014. DD 2014-02 General principles of regional geological environment investigation (proposed)[S]. Beijing: China Geological Survey (in Chinese).

    Google Scholar

    [7] FANG Y Q. 2018. The study of mine geological environment evaluation method in Fujian, China[D]. Beijing: China University of Geosciences (Beijing) (in Chinese with English abstract).

    Google Scholar

    [8] GUO J W, XIAN W, LI Y S, WANG H S. 2014. The study of assessment on mining geo-environment in Hongge Vanadium-Titanium Magnetite District based on remote sensing and fuzzy mathematics[J]. Remote Sensing Technology and Application,29(1):82-87 (in Chinese with English abstract).

    Google Scholar

    [9] HAN S, HUI S J, SUN Q, ZHANG S, SHI L, ZHANG Y, ZHU Q W. 2023. Research on ecological restoration technology of highrsteep slopes of abandoned minesbased on geological safety evaluation[J]. East China Geology,44(2):216-227 (in Chinese with English abstract).

    Google Scholar

    [10] JIA H, LIU J X, YIN X Y, WANG C G, GENG H, CHI H X, TANG S J. 2021. Ecological evaluation of the Tongling pyrite mining district in Anhui Province[J]. Earth Science Frontiers,28(4):131-141 (in Chinese with English abstract).

    Google Scholar

    [11] JIANG F L, ZHOU K P, LI S N, XIAO J Q, PAN D, LI K. 2009. Study on the model of mines’ geological environmental impact assessment based on rough set and artificial neural network and its application[J]. China Safety Science Journal,19(8):126-132 (in Chinese with English abstract).

    Google Scholar

    [12] JIANG Y H, ZHOU Q P,NI H Y, CHEN L D,CHENG H Q, LEI M T,GE W Y, MA T, SHI B,CHENG Z Y,DUAN X J, SU J W, ZHU J Q, XlU L C, XANG F, ZHU Z M, FENG N Q, XIE Z S, TAN J M, PENG K, GUO S Q, FU Y P, REN H Y, SUN J P, YANG Q, ZHU J L, WANG D H, LI M H, LIU G N, FAN C Z, WANG X F, SHI Y J, WANG H M, DONG X Z, CHEN H Y,HAO S F, DENG Y M, LI Y, XIAO Z Y, YANG H, LIU L, JIN Y, ZHANG H, MEI S J, QI Q J, LA J S, HOU L L, CHEN G, CHEN Z, JIA Z Y. 2023. Progress of environmental geological investigation and research in the Yangtze River Economic Zone[J]. East China Geology,44(3):239-261 (in Chinese with English abstract).

    Google Scholar

    [13] JIANGXI BUREAU OF GEOLOGY AND MINERAL EXPLORATION AND DEVELOPMENT. 2017. Regional geology of China· Jiangxi[M]. Beijing: Geology Press (in Chinese).

    Google Scholar

    [14] LI D, ZHOU K F, SUN W D, WANG J L, YU H, LIU H. 2015. Application of BP neural network and SVM in mine environmental assessment[J]. Arid Land Geography,38(1):128-134 (in Chinese with English abstract).

    Google Scholar

    [15] LIAO H J, SHAO H Y, SUN X F. 2015. Mine geological environment assessment based on the comprehensive index method: in Panxi mining area as an example[J]. Geomatics & Spatial Information Technology,38(11):34-36 (in Chinese with English abstract).

    Google Scholar

    [16] LIU F. 2014. Research on the combination evaluation model of mine geological environment based on grey correlation degree, AHP and fuzzy[D]. Xi’an: Changʼan University (in Chinese with English abstract).

    Google Scholar

    [17] LIU Y, XIONG L, WU Y F. 2021. Investigation and analysis on the geo-environment problem of abandoned mines in Jiangxi Province[J]. Jiangxi Science,39(3):483-489 (in Chinese with English abstract).

    Google Scholar

    [18] MA W. 2015. Assessment method for mining geo-environment using weights-of-evidence modeling[D]. Beijing: China University of Geosciences (Beijing) (in Chinese with English abstract).

    Google Scholar

    [19] MAYES W M, JOHNSTON D, POTTER H A B, JARVIS A P. 2009. A national strategy for identification, prioritisation and management of pollution from abandoned non-coal mine sites in England and Wales. I. : methodology development and initial results[J]. Science of the Total Environment,407(21):5435-5447. doi: 10.1016/j.scitotenv.2009.06.019

    CrossRef Google Scholar

    [20] MINISTRY OF LAND AND RESOURCES OF THE PEOPLEʼS REPUBLIC OF CHINA. 2007. DZ/T 223-2007 Compiling regulation on the project of mining environmental protection and integrated renovation[S]. Beijing: Standards Press of China, 1-27 (in Chinese).

    Google Scholar

    [21] MINISTRY OF LAND AND RESOURCES OF THE PEOPLEʼS REPUBLIC OF CHINA. 2014. DZ/T 0266-2014 Regulation on remote sensing monitoring of mining exploration[S]. Beijing: Standards Press of China, 1-48 (in Chinese).

    Google Scholar

    [22] NATIONAL METEOROLOGICAL SCIENCE DATA CENTER. (2022-01-10)[2023-05-30]. National meteorological data center[R/OL]. http://data.cma.cn/analysis/yearbooks.html (in Chinese).

    Google Scholar

    [23] NATURAL RESOURCE SATELLITE REMOTE SENSING CLOUD SERVICE PLATFORM. (2021-08-30)[2023-05-30]. The 2022 Resource III (ZY3-3) satellite image[R/OL]. http://www.sasclouds.com/chinese/satellite/chinese/zy3 (in Chinese).

    Google Scholar

    [24] SUN Q, ZHANG T L, WU J B, WANG H S. 2018. Landslide risk assessment of the Longxi river basin based on GIS and AHP[J]. East China Geology,39(3):227-233 (in Chinese with English abstract).

    Google Scholar

    [25] WANG N Q, WANG Y F, WANG D K. 2009. Studies on ecological environment comprehensive evaluation of the geological sub-regional in Gansu mining area[J]. Research of Soil and Water Conservation,16(5):225-228,232 (in Chinese with English abstract).

    Google Scholar

    [26] WANG W. 2014. Construction of evaluation index system for protection and restoration of mine ecological environment[D]. Taiyuan: North University of China (in Chinese with English abstract).

    Google Scholar

    [27] YAN C, LIU S H, ZHAO X. 2005. A study on the synthetic evaluation index of the mine environment remote sensing[J]. Remote Sensing Information, (6): 29-31 (in Chinese with English abstract).

    Google Scholar

    [28] ZHANG H. 2020. The index system and comprehensive evaluation of mine geological environment evaluation[D]. Beijing: China University of Geosciences (Beijing) (in Chinese with English abstract).

    Google Scholar

    [29] ZHANG J D, ZHANG D Q, TIAN L. 2007. Methods of investigations and integrated assessments of the nationwide mine geoenvironment[J]. Geological Bulletin of China,26(2):136-140 (in Chinese with English abstract).

    Google Scholar

    [30] ZHANG Y. 2017. Study on evaluation of mine geological environment based on comprehensive weights and fuzzy comprehensive model[D]. Beijing: China University of Geosciences (Beijing) (in Chinese with English abstract).

    Google Scholar

    [31] ZHANG Z H. 2018. Comprehensive evaluation on mine geological environment quality of Yinshan lead-zinc deposite in Jiangxi Province[J]. World Nonferrous Metals,(22):169-169 (in Chinese with English abstract).

    Google Scholar

    [32] ZHAO T. 2007. Monitoring and evaluation of mine environment based on remote sensing and GIS: case study of Jiangxi Dexing copper mine[D]. Beijing: Chinese Academy of Geological Sciences (in Chinese with English abstract).

    Google Scholar

    [33] ZHAO Y, NI H Y, WU J B, SUN Q, ZHANG T L, LIU M J. 2021. Evaluation of geological hazard vulnerability based on AHP-CF model: Take Shiyang Town of Taishun County as an example[J]. East China Geology,42(1):66-75 (in Chinese with English abstract).

    Google Scholar

    [34] ZHAO Y L. 2020. Study and application of analytic hierarchy process of mine geological environment: a case study in Hainan Island[J]. Remote Sensing for Land & Resources,32(1):148-153 (in Chinese with English abstract).

    Google Scholar

    [35] 柴勇, 孟广涛, 方向京, 李贵祥, 和丽萍, 汤红义, 王学云, 杨永祥. 2004. 云南金沙江流域退化林地群落特征研究[J]. 西北林学院学报,19(2):146-151.

    Google Scholar

    [36] 陈俊奇. 2017. 基于RS和GIS的矿山地质环境调查与评价[D]. 北京: 中国地质大学(北京).

    Google Scholar

    [37] 陈哲锋, 吴静, 郭玉斌, 林腾. 2018. 层次分析与模糊数学综合评价法在矿山环境评价中的应用[J]. 华东地质,39(4):305-310.

    Google Scholar

    [38] 程银行, 金若时, CUNEY M, PETROV V A, 苗培森. 2024. 中国北方盆地大规模铀成矿作用:地层篇[J]. 地质学报,98(7):1953-1976.

    Google Scholar

    [39] 方彦奇. 2018. 福建省矿山地质环境评价方法研究[D]. 北京: 中国地质大学(北京).

    Google Scholar

    [40] 郭加伟, 仙巍, 李永树, 王洪蜀. 2014. 基于遥感和模糊数学的矿山地质环境综合评价研究——以红格钒钛磁铁矿区为例[J]. 遥感技术与应用,29(1):82-87.

    Google Scholar

    [41] 国家气象科学数据中心. (2022-01-10)[2023-05-30]. 中国气象年鉴专题[R/OL]. http://data.cma.cn/analysis/yearbooks.html.

    Google Scholar

    [42] 贾晗, 刘军省, 殷显阳, 王春光, 耿浩, 迟昊轩, 唐世杰. 2021. 安徽铜陵硫铁矿集中开采区矿山地质环境评价研究[J]. 地学前缘,28(4):131-141.

    Google Scholar

    [43] 韩帅,惠淑君,孙强,张帅,时磊,张颖,朱庆伟. 2023. 基于地质安全评价的废弃矿山高陡边坡生态修复技术研究[J]. 华东地质,44(2):216-227.

    Google Scholar

    [44] 蒋复量, 周科平, 李书娜, 肖建清, 潘东, 李魁. 2009. 基于粗糙集﹣神经网络的矿山地质环境影响评价模型及应用[J]. 中国安全科学学报,19(8):126-132.

    Google Scholar

    [45] 江西省地质矿产勘查开发局. 2017. 中国区域地质志·江西志[M]. 北京: 地质出版社.

    Google Scholar

    [46] 姜月华,周权平,倪化勇,陈立德,程和琴,雷明堂,葛伟亚,马腾,施斌,程知言,段学军,苏晶文,朱锦旗,修连存,向芳, 朱志敏,冯乃琦,谢忠胜,谭建民,彭轲,郭盛乔,伏永朋,任海彦,孙建平,杨强,朱继良,王东辉,李明辉,刘广宁,范晨子,王新峰,史玉金,王寒梅,董贤哲,陈焕元,郝社峰,邓娅敏,李云,肖则佑,杨海,刘林,金阳,张鸿,梅世嘉,齐秋菊,吕劲松,侯莉莉,陈刚,陈孜,贾正阳. 2023. 长江经济带环境地质调査研究进展[J]. 华东地质,44(3):239-261.

    Google Scholar

    [47] 李东, 周可法, 孙卫东, 王金林, 于浩, 刘慧. 2015. BP神经网络和SVM在矿山环境评价中的应用分析[J]. 干旱区地理,38(1):128-134.

    Google Scholar

    [48] 廖红军, 邵怀勇, 孙小飞. 2015. 基于综合指数法的矿山地质环境评价 —— 以攀西矿区为例[J]. 测绘与空间地理信息, 38(11): 34-36.

    Google Scholar

    [49] 刘方. 2014. 基于灰色关联度的模糊层次组合矿山地质环境评价模型研究[D]. 西安: 长安大学.

    Google Scholar

    [50] 刘云, 熊立, 吴雨夫. 2021. 江西省废弃矿山地质环境问题调查与分析[J]. 江西科学,39(3):483-489.

    Google Scholar

    [51] 马伟. 2015. 基于证据权法的矿山地质环境质量评价模型研究[D]. 北京: 中国地质大学(北京).

    Google Scholar

    [52] 孙强, 张泰丽, 伍剑波, 王赫生. 2018. 基于GIS与层次分析法的龙溪流域滑坡风险评价[J]. 华东地质,39(3):227-233.

    Google Scholar

    [53] 王念秦, 王永锋, 王得楷. 2009. 甘肃矿山生态地质环境现状综合评价分区研究[J]. 水土保持研究,16(5):225-228,232.

    Google Scholar

    [54] 王伟. 2014. 矿山生态环境保护与恢复治理评价指标体系的研究[D]. 太原: 中北大学.

    Google Scholar

    [55] 颜春, 刘素红, 赵祥. 2005. 矿山环境遥感综合评价指标的研究[J]. 遥感信息,27(6):29-31.

    Google Scholar

    [56] 张汉. 2020. 矿山地质环境评价指标体系与综合评价[D]. 北京: 中国地质大学(北京).

    Google Scholar

    [57] 张进德, 张德强, 田磊. 2007. 全国矿山地质环境调查与综合评估技术方法探讨[J]. 地质通报,26(2):136-140.

    Google Scholar

    [58] 张艳. 2017. 基于综合权值法与模糊综合模型的矿山地质环境评价研究[D]. 北京: 中国地质大学(北京).

    Google Scholar

    [59] 张志辉. 2018. 江西省银山铅锌矿矿山地质环境质量综合评价[J]. 世界有色金属,(22):168-169.

    Google Scholar

    [60] 赵汀. 2007. 基于遥感和GIS的矿山环境监测与评价——以江西德兴铜矿为例[D]. 北京: 中国地质科学院.

    Google Scholar

    [61] 赵阳, 倪化勇, 伍剑波, 孙强, 张泰丽, 刘明军. 2021. 基于AHP-CF模型的地质灾害易发性评价——以泰顺县仕阳镇为例[J]. 华东地质,42(1):66-75.

    Google Scholar

    [62] 赵玉灵. 2020. 基于层次分析法的矿山环境评价方法研究——以海南岛为例[J]. 国土资源遥感,32(1):148-153.

    Google Scholar

    [63] 中国地质调查局. 2014. DD 2014—02 区域地质环境调查总则(试行)[S]. 北京: 中国地质调查局.

    Google Scholar

    [64] 中华人民共和国国土资源部. 2007. DZ/T 223—2007 矿山环境保护与综合治理方案编制规范[S]. 北京: 中国标准出版社, 1-27.

    Google Scholar

    [65] 中华人民共和国国土资源部. 2014. DZ/T 0266—2014 矿产资源开发遥感监测技术规范[S]. 北京: 中国标准出版社, 1-48.

    Google Scholar

    [66] 自然资源卫生遥感云服务平台. (2021-08-30)[2023-05-30]. 资源三号卫星[R/OL]. http://www.sasclouds.com/chinese/satellite/chinese/zy3.

    Google Scholar

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