Characteristics and processes of hydrogeochemical evolution induced by long-term mining activities in karst aquifers, southwestern China
暂无分享,去创建一个
Zhi-hua Chen | Tao Wang | He Huang | Liang Zhang | Yong Wang | Gaoming Zhou | Bangtao Sun
[1] Zhi-hua Chen,et al. Nitrate distribution and dynamics as indicators to characterize karst groundwater flow in a mined mineral deposit in southwestern China , 2019, Hydrogeology Journal.
[2] Jianhua Wu,et al. Karst Spring Protection for the Sustainable and Healthy Living: The Examples of Niangziguan Spring and Shuishentang Spring in Shanxi, China , 2019, Exposure and Health.
[3] Zengguang Xu,et al. Environmental Impact Assessment of Mining Activities on Groundwater: Case Study of Copper Mine in Jiangxi Province, China , 2019, Journal of Hydrologic Engineering.
[4] M. Kumar,et al. Stable isotope systematics and geochemical signatures constraining groundwater hydraulics in the mining environment of the Korba Coalfield, Central India , 2018, Environmental Earth Sciences.
[5] Peiyue Li,et al. Geochemistry, Hydraulic Connectivity and Quality Appraisal of Multilayered Groundwater in the Hongdunzi Coal Mine, Northwest China , 2018, Mine Water and the Environment.
[6] W. Jiao,et al. Destruction processes of mining on water environment in the mining area combining isotopic and hydrochemical tracer. , 2018, Environmental pollution.
[7] Yizhi Sheng,et al. Using stable isotopes (δD, δ18O, δ34S and 87Sr/86Sr) to identify sources of water in abandoned mines in the Fengfeng coal mining district, northern China , 2018, Hydrogeology Journal.
[8] E. Vargas,et al. Analysis of water control in an underground mine under strong karst media influence (Vazante mine, Brazil) , 2018, Hydrogeology Journal.
[9] Pan Wu,et al. Effects of mining activities on evolution of water chemistry in coal-bearing aquifers in karst region of Midwestern Guizhou, China: evidences from δ13C of dissolved inorganic carbon and δ34S of sulfate , 2018, Environmental Science and Pollution Research.
[10] Z. Duan,et al. Hydrogeochemical Evolution of an Ordovician Limestone Aquifer Influenced by Coal Mining: A Case Study in the Hancheng Mining Area, China , 2018, Mine Water and the Environment.
[11] Yu Wang,et al. Modeling the Effects of Phosphate Mining on Groundwater at Different Stages of Mine Development , 2018, Mine Water and the Environment.
[12] Cong Peng,et al. Identifying and assessing human activity impacts on groundwater quality through hydrogeochemical anomalies and NO3−, NH4+, and COD contamination: a case study of the Liujiang River Basin, Hebei Province, P.R. China , 2018, Environmental Science and Pollution Research.
[13] C. Drebenstedt,et al. Hydro-geochemical paths of multi-layer groundwater system in coal mining regions - Using multivariate statistics and geochemical modeling approaches. , 2017, The Science of the total environment.
[14] Peiyue Li,et al. Progress, opportunities, and key fields for groundwater quality research under the impacts of human activities in China with a special focus on western China , 2017, Environmental Science and Pollution Research.
[15] A. Peña,et al. Hydrochemical characterization of a mine water geothermal energy resource in NW Spain. , 2017, The Science of the total environment.
[16] E. Custodio,et al. Groundwater intensive exploitation and mining in Gran Canaria and Tenerife, Canary Islands, Spain: Hydrogeological, environmental, economic and social aspects. , 2016, The Science of the total environment.
[17] H. Marszałek,et al. Groundwater geochemical evolution under the influence of polymetallic deposit in Czarnów (Western Sudetes, SW Poland) , 2016, Environmental Earth Sciences.
[18] Peiyue Li,et al. Major Ion Chemistry and Quality Assessment of Groundwater in and Around a Mountainous Tourist Town of China , 2016, Exposure and Health.
[19] Xubo Gao,et al. Hydrochemistry and coal mining activity induced karst water quality degradation in the Niangziguan karst water system, China , 2016, Environmental Science and Pollution Research.
[20] F. Moral,et al. Hydrochemical changes due to intensive use of groundwater in the carbonate aquifers of Sierra de Estepa (Seville, Southern Spain) , 2015 .
[21] Zhi-hua Chen,et al. Spatial distribution, temporal variation, and sources of heavy metal pollution in groundwater of a century-old nonferrous metal mining and smelting area in China , 2014, Environmental Monitoring and Assessment.
[22] A. Kchikach,et al. Hydrogeochemical behavior around the abandoned Kettara mine site, Morocco , 2014 .
[23] P. Younger,et al. Detection of Mixing Dynamics During Pumping of a Flooded Coal Mine , 2014, Ground water.
[24] J. Motyka,et al. Impact of Zn–Pb mining in the Olkusz ore district on the Permian aquifer (SW Poland) , 2013, Environmental science and pollution research international.
[25] Jason S. Polk,et al. Evolution of major environmental geological problems in karst areas of Southwestern China , 2013, Environmental Earth Sciences.
[26] Jiansheng Chen,et al. Recharge sources and hydrogeochemical evolution of groundwater in the coal-mining district of Jiaozuo, China , 2012, Hydrogeology Journal.
[27] Qin Zheng-jiao. A Discussion on Mine and Water Pollution Problems in Karst Areas in Southwest China , 2012 .
[28] A. Cardona,et al. Evaluation of hydrochemical changes due to intensive aquifer exploitation: case studies from Mexico , 2012, Environmental Monitoring and Assessment.
[29] H. Jourde,et al. Hydrodynamical changes and their consequences on groundwater hydrochemistry induced by three decades of intense exploitation in a Mediterranean Karst system , 2012, Environmental Earth Sciences.
[30] Jinlong Zhou,et al. Influence of coal mining on regional karst groundwater system: a case study in West Mountain area of Taiyuan City, northern China , 2011 .
[31] A. Soler,et al. Nitrate as a tracer of groundwater flow in a fractured multilayered aquifer , 2011 .
[32] Qiu Wen-long. Study on the Isotope Geochemistry of the Maoping Pb-Zn Deposit,Zhaotong,Yunnan , 2011 .
[33] E. Poeter,et al. Investigating hydraulic connections and the origin of water in a mine tunnel using stable isotopes and hydrographs , 2009 .
[34] Dongmei Han,et al. Hydrogeochemical Indicators of Groundwater Flow Systems in the Yangwu River Alluvial Fan, Xinzhou Basin, Shanxi, China , 2009, Environmental management.
[35] J. Nieto,et al. Environmental Impact of Mining Activities in the Southern Sector of the Guadiana Basin (SW of the Iberian Peninsula) , 2009 .
[36] P. Younger,et al. Hydrochemical and isotopic tracing of mixing dynamics and water quality evolution under pumping conditions in the mine shaft of the abandoned Frances Colliery, Scotland. , 2007 .
[37] M. Bakalowicz. Karst groundwater: a challenge for new resources , 2005 .
[38] L. N. Plummer,et al. Geochemistry and the understanding of ground-water systems , 2005 .
[39] James M. Thomas,et al. Environmental isotopes in hydrogeology , 2003 .
[40] Emilio Custodio,et al. Aquifer overexploitation: what does it mean? , 2002 .
[41] Nick Robins,et al. Challenges in the characterization and prediction of the hydrogeology and geochemistry of mined ground , 2002, Geological Society, London, Special Publications.
[42] D. L. Parkhurst,et al. User's guide to PHREEQC (Version 2)-a computer program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations , 1999 .
[43] E. Frind,et al. Sulfide mineral oxidation and subsequent reactive transport of oxidation products in mine tailings impoundments: A numerical model , 1996 .
[44] C. Appelo,et al. Geochemistry, groundwater and pollution , 1993 .