• 中国出版政府奖提名奖

    中国百强科技报刊

    湖北出版政府奖

    中国高校百佳科技期刊

    中国最美期刊

    Volume 45 Issue 6
    Jun.  2020
    Turn off MathJax
    Article Contents
    Liu Mingliang, He Tong, Wu Qifan, Guo Qinghai, 2020. Hydrogeochemistry of Geothermal Waters from Xiongan New Area and Its Indicating Significance. Earth Science, 45(6): 2221-2231. doi: 10.3799/dqkx.2019.270
    Citation: Liu Mingliang, He Tong, Wu Qifan, Guo Qinghai, 2020. Hydrogeochemistry of Geothermal Waters from Xiongan New Area and Its Indicating Significance. Earth Science, 45(6): 2221-2231. doi: 10.3799/dqkx.2019.270

    Hydrogeochemistry of Geothermal Waters from Xiongan New Area and Its Indicating Significance

    doi: 10.3799/dqkx.2019.270
    • Received Date: 2019-07-12
    • Publish Date: 2020-06-15
    • Hydrogeochemical reaserch of geothermal fluids is an effective method to understand the formation mechanism, occurrence environment and circulation process of geothermal resources. Xiongan New Area, one of the typical low-temperature geothermal systems in the North China plain, is selected as the study area. In this study it is based on the analysis of water chemistry and isotopes, and aims: (1) to discuss the geochemical origin of main components in geothermal fluids, (2) to estimate the deep reservoir temperatures of geothermal waters, (3) to figure out the heat source beneath geothermal area and its genetic mechanism. The hydrochemical evidences imply that the main components in Xiongan geothermal waters are contributed by meteoric waters input and intense fluid-rock interactions at high reservoir temperatures, and several components of Wumishan Formation geothermal waters are from the dissolution of evaporation salt formed during the diagenetic process. The Ca-Mg and quartz geothermometer are suitable for estimating the reservoir temperature of Wumishan Formation geothermal waters, while that for Guantao Formation geothermal waters, the quartz geothermometer is much more appropriate. The calculated temperatures range from 76.4 to 90.6 ℃ and 66.2 to 71.3 ℃, respectively. The geothermal anomaly beneath Xiongan is likely to result from decay of radioactive elements in a specific tectonic setting.

       

    • loading
    • Ármannsson, H.2016.The Fluid Geochemistry of Icelandic High Temperature Geothermal Areas.Applied Geochemistry, 66:14-64. https://doi.org/10.1016/j.apgeochem.2015.10.008
      Birkle, P, Marín, E.P, Pinti, D.L, et al.2016.Origin and Evolution of Geothermal Fluids from Las Tres Vírgenes and Cerro Prieto Fields, Mexico-Co-Genetic Volcanic Activity and Paleoclimatic Constraints.Applied Geochemistry, 65:36-53. https://doi.org/10.1016/j.apgeochem.2015.10.009
      Blasco, M, Auqué, L.F, Gimeno, M.J, et al.2017.Geochemistry, Geothermometry and Influence of the Concentration of Mobile Elements in the Chemical Characteristics of Carbonate-Evaporitic Thermal Systems, the Case of the Tiermas Geothermal System (Spain).Chemical Geology, 466:696-709. https://doi.org/10.1016/j.chemgeo.2017.07.013
      Brown, L.D, Zhao, W, Nelson, K.D, et al.1996.Bright Spots, Structure, and Magmatism in Southern Tibet from INDEPTH Seismic Reflection Profiling.Science, 274(5293):1688-1690. https://doi.org/10.1126/science.274.5293.1688
      Cartwright, I, Weaver, T.R, Fifield, L.K.2006.Cl/Br Ratios and Environmental Isotopes as Indicators of Recharge Variability and Groundwater Flow:An Example from the Southeast Murray Basin, Australia.Chemical Geology, 231(1-2):38-56. https://doi.org/10.1016/j.chemgeo.2005.12.009
      Chen, L, Booker, J.R, Jones, A.G, et al.1996.Electrically Conductive Crust in Southern Tibet from INDEPTH Magnetotelluric Surveying.Science, 274(5293):1694-1696. https://doi.org/10.1126/science.274.5293.1694
      Cheng, M.X.1988.Geothermics in North China.Science Press, Beijing(in Chinese).
      Cheng, M.X, Wang, J.Y, Deng, X.1996.The Map of Geothermal System Types in China and Its Brief explaination.Scientia Geologica Sinica, 31(2):114-121 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTotal-DZKX602.001.htm
      Cheng, M.X, Wang, J.Y, Wang, J.A, et al.1990.The Characteristics of the Geothermal Field and Its Formation Mechanism in the North China Down-Faulted Basin.Acta Geologica Sinica, 64(1):80-91 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTotal-DZXE199001007.htm
      Chiodini, G, Frondini, F, Marini, L.1995.Theoretical Geothermometers and pCO2 Indicators for Aqueous Solutions Coming from Hydrothermal Systems of Medium-Low Temperature Hosted in Carbonate-Evaporite Rocks.Application to the Thermal Springs of the Etruscan Swell, Italy.Applied Geochemistry, 10(3):337-346.https://doi.org/10.1016/0883-2927(95)00006-6
      Guo, Q.H.2012.Hydrogeochemistry of High-Temperature Geothermal Systems in China:A Review.Applied Geochemistry, 27(10):1887-1898. https://doi.org/10.1016/j.apgeochem.2012.07.006
      Guo, S.Y, Li, X.J.2013.Reservoir Stratum Characterstics and Geothermal Resources Potential of Rongcheng Uplift Geothermal Field in Baoding, Hebei.Chinese Journal of Geology, 48(3):922-9321 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=dzkx201303026
      Hoke, L, Lamb, S, Hilton, D.R, et al.2000.Southern Limit of Mantle-Derived Geothermal Helium Emissions in Tibet:Implications for Lithospheric Structure.Earth and Planetary Science Letters, 180(3-4):297-308.https://doi.org/10.1016/s0012-821x(00)00174-6 doi: 10.1016/S0012-821X(00)00174-6
      Kaygusuz, K, Kaygusuz, A.2004.Geothermal Energy in Turkey:The Sustainable Future.Renewable and Sustainable Energy Reviews, 8(6):545-563. https://doi.org/10.1016/j.rser.2004.01.001
      Kind, R, Ni, J, Zhao, W, et al.1996.Evidence from Earthquake Data for a Partially Molten Crustal Layer in Southern Tibet.Science, 274(5293):1692-1694. https://doi.org/10.1126/science.274.5293.1692
      Li, C.S, Wu, X.C, Sun, B, et al.2018.Hydrochemical Characteristics and Formation Mechanism of Geothermal Water in Northern Ji'nan.Earth Science, 43(Suppl.1):313-325(in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/dqkx2018z1027
      Li, J.X, Guo, Q.H, Yu, Z.Y.2017.Impact of Clay Mineral Formation in High-Temperature Geothermal System on Accuracy of Na-K and K-Mg Geothermometers.Earth Science, 42(1):142-154(in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=dqkx201701011
      Li, W.W, Rao, S, Tang, X.Y, et al.2014.The Drilling Temperature Measurement and Geothermal Field Characteristics of Geothermal Field in Xiong County, Hebei Province.Chinese Journal of Geology, 49(3):850-863 (in Chinese).
      Lin, W.J, Liu, Z.M, Wang, W.L, et al.2013.The Assessment of Geothermal Resources Potential of China.Geology in China, 40(1):312-321 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTotal-DIZI201301023.htm
      Liu, M.L, Guo, Q.H, Wu, G, et al.2019.Boron Geochemistry of the Geothermal Waters from Two Typical Hydrothermal Systems in Southern Tibet (China):Daggyai and Quzhuomu.Geothermics, 82:190-202. https://doi.org/10.1016/j.geothermics.2019.06.009
      Makovsky, Y, Klemperer, S.L, Ratschbacher, L, et al.1996.INDEPTH Wide-Angle Reflection Observation of P-Wave-to-S-Wave Conversion from Crustal Bright Spots in Tibet.Science, 274(5293):1690-1691.https://doi.org/10.1126/science.274.5293.169 doi: 10.1126/science.274.5293.1690
      Najafi, G, Ghobadian, B.2011.Geothermal Resources in Iran:The Sustainable Future.Renewable and Sustainable Energy Reviews, 15(8):3946-3951. https://doi.org/10.1016/j.rser.2011.07.032
      Nelson, K.D, Zhao, W, Brown, L.D, et al.1996.Partially Molten Middle Crust beneath Southern Tibet:Synthesis of Project INDEPTH Results.Science, 274(5293):1684-1688. https://doi.org/10.1126/science.274.5293.1684
      Pang, J.M, Pang, Z.H, Lü, M, et al.2018.Geochemical and Isotopic Characteristics of Fluids in the Niutuozhen Geothermal Field, North China.Environmental Earth Sciences, 77(1):12.https://doi.org/10.1007/s12665-017-7171-y doi: 10.1007/s12665-017-7171-y
      Pang, Z.H, Kong, Y.L, Pang, J.M, et al.2017.Geothermal Resources and Development in Xiongan New Area.Bulletin of the Chinese Academy of Science, 32(11):56-62 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/zgdz-e202001015
      Tang, Y.P, Wang, G.J, Tang, J.H, et al.2017.The Application of Soil Gas Method to Delineation of the Most Favorable Enrichment Area of the Sedimentary Basin Type Geothermal System.Geophysical and Geochemical Exploration, 41(1):22-28(in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=wtyht201701004
      Wang, G.L, Zhang, W, Lin, W.J, et al.2017.Research on Formation Mode and Development Potential of Geothermal Resources in Beijing-Tianjin-Hebei Region.Geology in China, 44(6):1074-1085 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=zgdizhi201706004
      Wang, S.F, Pang, Z.H, Liu, J.R, et al.2013.Origin and Evolution Characteristics of Geothermal Water in the Niutuozhen Geothermal Field, North China Plain.Journal of Earth Science, 24(6):891-902. https://doi.org/10.1007/s12583-013-0390-6
      Wang, X.W, Wang, T.H, Zhang, X, et al.2019.Genetic Mechanism of Xiwenzhuang Geothermal Field in Taiyuan Basin.Earth Science, 44(3):1042-1056 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/dqkx201903029
      Wang, Y.B, Ding, W.P, Tian, Y, et al.2016.Genetic Analysis on High-Temperature Geothermal Water in Niutuo Geothermal Field, Heibei Province.Urban Geology, 11(3):59-64(in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=csdz201603012
      Wu, A.M, Ma, F, Wang, G.L, et al.2018.A Study of Deep-Seated Karst Geothermal Reservoir Exploration and Huge Capacity Geothermal Well Parameters in Xiongan New Area.Acta Geoscientica Sinica, 39(5):523-532(in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/dqxb201805002
      Yang, J.L, Liu, F.T, Jia, Z, et al.2018.The Hydrochemical and δ2H-δ18O Characteristics of Two Geothermal Fields in Niutuozhen of Hebei Province and Tianjin and Their Environmental Significance.Acta Geoscientica Sinica, 39(1):71-78(in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=dqxb201801008
      Yuan, J.F, Guo, Q.H, Wang, Y.X.2014.Geochemical Behaviors of Boron and Its Isotopes in Aqueous Environment of the Yangbajing and Yangyi Geothermal Fields, Tibet, China.Journal of Geochemical Exploration, 140:11-22. https://doi.org/10.1016/j.gexplo.2014.01.006
      Zhang, D.Z, Liu, Z.G, Lu, H.L.2013.Geothermics in Hebei.Science Press, Beijing (in Chinese).
      Zhu, J.L, Hu, K.Y, Lu, X.L, et al.2015.A Review of Geothermal Energy Resources, Development, and Applications in China:Current Status and Prospects.Energy, 93:466-483. https://doi.org/10.1016/j.energy.2015.08.098
      陈墨香.1988.华北地热.北京:科学出版社.
      陈墨香, 汪集旸, 邓孝.1996.中国地热系统类型图及其简要说明.地质科学, 31(2):114-121. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=QK199601035663
      陈墨香, 汪集旸, 汪缉安, 等.1990.华北断陷盆地地热场特征及其形成机制.地质学报, 64(1):80-91. http://www.cqvip.com/Main/Detail.aspx?id=229735
      郭世炎, 李小军.2013.河北保定容城凸起地热田储层属性与资源潜力.地质科学, 48(3):922-931. doi: 10.3969/j.issn.0563-5020.2013.03.026
      李常锁, 武显仓, 孙斌, 等.2018.济南北部地热水水化学特征及其形成机理.地球科学, 43(增刊1):313-325. doi: 10.3799/dqkx.2018.206
      李洁祥, 郭清海, 余正艳.2017.高温地热系统中粘土矿物形成对Na-K和K-Mg地球化学温标准确性的影响.地球科学, 42(1):142-154. doi: 10.3799/dqkx.2017.011
      李卫卫, 饶松, 唐晓音, 等.2014.河北雄县地热田钻井地温测量及地温场特征.地质科学, 49(3):850-863. doi: 10.3969/j.issn.0563-5020.2014.03.012
      蔺文静, 刘志明, 王婉丽, 等.2013.中国地热资源及其潜力评估.中国地质, 40(1):312-321. doi: 10.3969/j.issn.1000-3657.2013.01.021
      庞忠和, 孔彦龙, 庞菊梅, 等.2017.雄安新区地热资源与开发利用研究.中国科学院院刊, 32(11):56-62. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=674176908
      汤玉平, 王国建, 唐俊红, 等.2017.应用壤中气方法圈定沉积盆地型地热田的地热最有利富集区.物探与化探, 41(1):22-28. http://d.old.wanfangdata.com.cn/Periodical/wtyht201701004
      王贵玲, 张薇, 蔺文静, 等.2017.京津冀地区地热资源成藏模式与潜力研究.中国地质, 44(6):1074-1085. http://d.old.wanfangdata.com.cn/Periodical/zgdizhi201706004
      汪新伟, 王婷灏, 张瑄, 等.2019.太原盆地西温庄地热田的成因机制.地球科学, 44(3):1042-1056. doi: 10.3799/dqkx.2018.387
      王永波, 丁文萍, 田月, 等.2016.河北牛驼镇地热田高温地热水成因分析.城市地质, 11(3):59-64. doi: 10.3969/j.issn.1007-1903.2016.03.011
      吴爱民, 马峰, 王贵玲, 等.2018.雄安新区深部岩溶热储探测与高产能地热井参数研究.地球学报, 39(5):523-532. http://d.old.wanfangdata.com.cn/Periodical/dqxb201805002
      杨吉龙, 柳富田, 贾志, 等.2018.河北牛驼镇与天津地热田水化学和氢氧同位素特征及其环境指示意义.地球学报, 39(1):71-78. http://d.old.wanfangdata.com.cn/Periodical/dqxb201801008
      张德忠, 刘志刚, 卢红柳.2013.河北地热.北京:地质出版社.
    • dqkx-45-6-2221-Table1-4.pdf
    • 加载中

    Catalog

      通讯作者: 陈斌, bchen63@163.com
      • 1. 

        沈阳化工大学材料科学与工程学院 沈阳 110142

      1. 本站搜索
      2. 百度学术搜索
      3. 万方数据库搜索
      4. CNKI搜索

      Figures(11)

      Article views (2592) PDF downloads(183) Cited by()
      Proportional views

      /

      DownLoad:  Full-Size Img  PowerPoint
      Return
      Return