参考文献/References:
[1] 梁晨霞,王艳慧,徐海涛,等. 贫困村空间分布及影响因素分析——以乌蒙山连片特困区为例[J]. 地理研究,2019,38(6):1389-1402. [LIANG Chenxia, WANG Yanhui, XU Haitao, et al. Analyzing spatial distribution of poor villages and their poverty contributing factors: A case study from Wumeng Mountain Area [J]. Geographical Research, 2019, 38(6): 1389-1402] DOI: 10.11821/dlyj020180024
[2] 张玉韩,侯华丽,沈悦,等. 乌蒙山片区矿产资源开发功能分区及扶贫政策探索[J]. 资源科学,2018,40(9):1716-1729. [ZHANG Yuhan, HOU Huali, SHEN Yue, et al. Study on the functional division of mineral resources development and poverty alleviation policy in Wumeng Mountain Area [J]. Resources Science, 2018, 40(9): 1716-1729] DOI: 10.18402/resci.2018.09.03
[3] 马成有. 地下水环境质量评价方法研究[D]. 长春:吉林大学,2009: 11-20. [MA Chengyou. Study on the groundwater environmental quality assessment methods [D]. Changchun: Jilin University, 2009: 11-20]
[4] 谢洪波. 焦作市地下水质量综合评价及污染预警研究[D]. 西安:长安大学,2008:68-91. [XIE Hongbo. Study on synthetic appraise of groundwater quality and pollution warning-forecast in Jiaozuo [D]. Xi'an: Chang'an University, 2008: 68-91]
[5] 洪涛,谢运球,喻崎雯, 等. 乌蒙山重点地区地下水水化学特征及成因分析[J]. 地球与环境,2016,44(1):11-18. [HONG Tao, XIE Yunqiu, YU Qiwen, et al. Hydrochemical characteristics study and genetic analysis of groundwater in a key region of the Wumeng Mountain, southwestern China [J]. Earth and Environment, 2016, 44(1): 11-18] DOI: 10.14050/j.cnki.1672-9250.2016.01.002
[6] 钟金先,崔英山,毛郁,等. 乌蒙山重点地区水文地质特征分析[J]. 地下水,2016,38(5):179-182. [ZHONG Jinxian, CUI Yingshan, MAO Yu, et al. Analysis on hydrogeology characteristics in Wu Mengshan key areas [J]. Ground Water, 2016, 38(5): 179-182]
[7] 李峰锐,李海侠,钱康,等. 乌蒙山五寨地区地下水水质特征分析[J]. 中国水运,2019(4):124-125. [LI Fengrui, LI Haixia, QIAN Kang, et al. Analysis of groundwater quality characteristics in Wuzhai area of Wumeng Mountain [J]. China Water Transport, 2019(4): 124-125]
[8] 任蕊,杨成程,匡野. 乌蒙山岩溶缺水地区表层岩溶泉有效开发模式研究[J]. 地下水,2018,40(2):24-26. [REN Rui, YANG Chengcheng, KUANG Ye. Study on the exploitation model of epikarst spring karst water Wumengshan area [J]. Ground Water, 2018, 40(2): 24-26]
[9] 蒲文斌,钱康,陈鹏, 等. 乌蒙山1:5万奎香幅地下水水质评价及相关性分析[J]. 地下水,2020,42(2):7-10,33. [PU Wenbin, QIAN Kang, CHEN Peng, et al. Groundwater quality assessment and correlation analysis in 1:50000 kuixiang sheet of Wumeng Mountain [J]. Ground Water, 2020, 42(2): 7-10,33] DOI: 10.19807/j.cnki.DXS.2020-02-003
[10] 黄思霜,许模,杨艳娜,等. 川东高陡背斜区水文网控制的地下岩溶空间分异研究[J]. 山地学报,2020,38(1):83-92. [HUANG Sishuang, XU Mo, YANG Yanna, et al. Spatial differentiation of underground karst controlled by hydrological network in high-steep anticline in eastern Sichuan, China [J]. Mountain Research, 2020, 38(1):83-92] DOI: 10.16089/j.cnki.1008-2786.000493
[11] 成胜,许模,杨艳娜,等. 川东褶皱带明月峡背斜区地下岩溶发育规律[J]. 长江科学院院报,2020,37(11):114-120. [CHENG Sheng, XU Mo, YANG Yanna, et al. Study on the development rules of underground karst in the Mingyue gorge anticline area of the eastern Sichuan tectonic belt [J]. Journal of Yangtze River Scientific Research Institute, 2020, 37(11):114-120] DOI: 10.11988/ckyyb.20190832
[12] 栾风娇,周金龙,贾瑞亮,等. 新疆巴里坤—伊吾盆地地下水水化学特征及成因[J]. 环境化学,2017,36(2):380-389. [LUAN Fengjiao, ZHOU Jinlong, JIA Ruiliang, et al. Hydrochemical characteristics and formation mechanism of groundwater in plain areas of Barkol-Yiwu Basin, Xinjiang [J]. Environmental Chemistry, 2017, 36(2): 380-389] DOI: 10.7524/j.issn.0254-6108.2017.02.2016062001
[13] 李巧,周金龙,高业新,等. 新疆玛纳斯河流域平原区地下水水文地球化学特征研究[J]. 现代地质,2015,29(2):238-244. [LI Qiao, ZHOU Jinlong, GAO Yexin, et al. Groundwater hydro-geochemistry in plain of Manasi river basin, Xinjiang [J]. Geoscience, 2015, 29(2): 238-244]
[14] 唐金平,张强,胡漾,等. 巴中北部岩溶山区地下水化学特征及演化分析[J]. 环境科学,2019,40(10):4543-4552. [TANG Jinping, ZHANG Qiang, HU Yang, et al. Hydrochemical characteristics of karst groundwater in the mountains of northern Bazhong city, China [J]. Environmental Science, 2019, 40(10): 4543-4552] DOI: 10.13227/j.hjkx.201904068
[15] 吴春勇,苏小四,郭金淼,等. 鄂尔多斯沙漠高原白垩系地下水水化学演化的多元统计分析[J]. 世界地质,2011,30(2):244-253. [WU Chunyong, SU Xiaosi, GUO Jinmiao, et al. Multivariate statistical analysis of hydrogeochemical evolution of groundwater in Cretaceous aquifer Ordos desert plateau [J]. Global Geology, 2011,30(2): 244-253] DOI: 10. 3969/j.issn.1004-5589.2011.02.013
[16] 赵江涛,周金龙,梁川,等. 新疆焉耆盆地平原区地下水演化的主要水文地球化学过程分析[J]. 环境化学,2017,36(6):1397-1406. [ZHAO Jiangtao, ZHOU Jinlong, LIANG Chuan, et al. Hydrogeochemical process of evolution of groundwater in plain area of Yanqi, Xinjiang [J]. Environmental Chemistry, 2017, 36(6): 1397-1406] DOI: 10.7524/j.issn.0254-6108.2017.06.2016091807
[17] 焦艳军,王广才,崔霖峰,等. 济源盆地地表水和地下水的水化学及氢、氧同位素特征[J]. 环境化学,2014,33(6):962-968. [JIAO Yanjun, WANG Guangcai, CUI Linfeng, et al. Characteristics of hydrochemistry and stable hydrogen, oxygen isotopes in surface water and groundwater in Jiyuan Basin [J]. Environmental Chemistry, 2014, 33(6): 962-968] DOI: 10.7524/j.issn.0254-6108.2014.06.023
[18] PETERMANN E, GIBSON J J, KNOLLER K, et al. Determination of groundwater discharge rates and water residence time of groundwater-fed lakes by stable isotopes of water(18O, 2H)and radon(222Rn)mass balances [J]. Hydrological Processes, 2018, 32(6): 805-816. DOI: 10.1002/hyp.11456
[19] MEZGA K, URBANC J, CERAR S. The isotope altitude effect reflected in groundwater: A case study from Slovenia [J]. Isotopes in Environmental and Health Studies, 2014, 50(1): 33-51. DOI: 10.1080/10256016.2013.826213
[20] 杨楠,苏春利,曾邯斌,等. 基于水化学和氢氧同位素的兴隆县地下水演化过程研究[J]. 水文地质工程地质,2020,47(6):154-162. [YANG Nan, SU Chunli, ZENG Hanbin, et al. Evolutional processes of groundwater in Xinglong county based on hydrochemistry and hydrogen and oxygen isotopes [J]. Hydrogeology and Engineering Geology, 2020, 47(6): 154-162] DOI: 10.16030/j.cnki.issn.1000-3665.202005027
[21] 张雅,苏春利,马燕华,等. 水化学和环境同位素对济南东源饮用水源地地下水演化过程的指示[J]. 环境科学,2019,40(6):2667-2674. [ZHANG Ya, SU Chunli, MA Yanhua, et al. Indicators of groundwater evolution processes based on hydrochemistry and environmental isotopes: A case study of the Dongyuan drinking water source area in Ji'nan city [J]. Environmental Science, 2019, 40(6): 2667-2674] DOI: 10.13227/j.hjkx.201810211
[22] 胡恭任,于瑞莲. 应用地积累指数法和富集因子法评价324国道塘头段两侧土壤的重金属污染[J]. 中国矿业,2008,17(4):48-51. [HU Gongren, YU Ruilian. Application of index of geo-accumulation and enrichment factor in assessment of heavy metal contamination in soil of tangtou section on No. 324 main roads [J]. China Mining Magazine, 2008, 17(4): 48-51]
[23] BLASER P, ZIMMERMANN S, LUSTER J, et al. Critical examination of trace element enrichments and depletions in soils: As, Cr, Cu, Ni, Pb and Zn in Swiss forest soils [J]. The Science of the Total Environment, 2000, 249: 257-280. DOI: 10.1016/S0048-9697(99)00522-7
[24] TEIXEIRA E C, ORTIZ L S, ALVES M F C C, et al. Distribution of selected heavy metals in fluvial sediments of the coal mining region of Baixo Jacui, RS, Brazil [J]. Environmental Geology, 2001,41:145-154. DOI: 10.1007/s002540100257
[25] 崔龙鹏,白建峰,史永红,等. 采矿活动对煤矿区土壤中重金属污染研究[J]. 土壤学报,2004,41(6):896-904. [CUI Longpeng, BAI Jianfeng, SHI Yonghong, et al. Heavy metals in soil contaminated by coal mining activity [J]. Acta Pedologica Sinica, 2004, 41(6): 896-904]
[26] 马宏瑞,张茜,季俊峰,等. 长江南京段近岸沉积物中重金属富集特征与形态分析[J]. 生态环境学报,2009,18(6):2061-2065. [MA Hongrui, ZHANG Qian, JI Junfeng, et al. Enrichment and speciation analysis of heavy metals in the sediments of Yangtze River(Nanjing section)[J]. Ecology and Environmental Sciences, 2009, 18(6): 2061-2065] DOI:10.16258/j.cnki.1674-5906.2009.06.038