Journal of Jilin University(Earth Science Edition) ›› 2020, Vol. 50 ›› Issue (6): 1844-1853.doi: 10.13278/j.cnki.jjuese.20190138

Previous Articles     Next Articles

Evaluation of Geothermal Water Resources in Tangshan Area, Nanjing

Lü Yaxin1, Luo Zujiang1, Xu Chenghua2   

  1. 1. School of Earth Science and Engineering, Hohai University, Nanjing 211100, China;
    2. The First Geological Brigade of the Bureau of Geology and Mineral Resources of Jiangsu, Nanjing 210041, China
  • Received:2019-06-28 Online:2020-11-26 Published:2020-12-11
  • Supported by:
    Supported by Project of Geological Survey of Jiangsu (2018-96-13)

Abstract: In order to accurately evaluate and plan the allowable exploitation quantity of geothermal water in Tangshan area, Nanjing, and to predict the changes of water level and temperature under the planned mining conditions, based on a full understanding of the hydrogeological information of geothermal water system, a hydrogeological conceptual model in Tangshan area was generalized,and a three-dimensional coupling mathematical model of unsteady seepage and heat transfer of groundwater was established in this area. The allowable exploitation quantity of geothermal water and the changes of water level and temperature were predicted under the condition that the drawdown is no more than 50 m. The results of simulation show that the allowable exploitation quantity of 14 existing geothermal water wells in Tangshan varies from 125.0 m3/d (R11) to 1 450.0 m3/d (R08). The total allowable exploitation quantity of geothermal water is 3.08×106m3/a. With the decrease of geothermal water level, its temperature rises 2-3℃ per year on average.

Key words: Tangshan area in Nanjing, geothermal water, numerical simulation, allowable exploitation quantity, water level and temperature

CLC Number: 

  • TV21
[1] 地热资源地质勘查规范:GB/T 11615-2010[S]. 北京:中国标准出版社,2010. Geologic Exploration Standard of Geothermal Resources:GB/T 11615-2010[S]. Beijing:Standards Press of China, 2010.
[2] 魏永霞,唐仲华,左霖.数值模拟在地热资源评价及优化开采方案的应用研究[J].安徽地质,2019,29(1):74-80. Wei Yongxia, Tang Zhonghua, Zuo Lin. Study on Application of Numerical Simulation in Geothermal Resource Evaluation and Optimization of Exploitation Scheme[J]. Geology of Anhui, 2019,29(1):74-80.
[3] Iqbal K S, Heru B P. A Natural State Model and Resource Assessment of Ulumbu Geothermal Field[J]. IOP Conference Series:Earth and Environmental Science.doi:10.1088/1755-1315/254/1/012017.
[4] 刘杰,宋美钰,田光辉.天津地热资源开发利用现状及可持续开发利用建议[J].地质调查与研究,2012,35(1):67-73. Liu Jie, Song Meiyu, Tian Guanghui. Development Situation of the Geothermal Resources and Suggestion on Sustainable Development Utilization in Tianjin[J].Geological Survey and Research, 2012,35(1):67-73.
[5] 朱喜,张庆莲,刘彦广. 基于热储法的鲁西平原地热资源评价[J].地质科技情报,2016,35(4):172-177. Zhu Xi, Zhang Qinglian, Liu Yanguang. Evaluation of the Geothermal Resources in the Plain of West Shandong Province[J]. Geological Science and Technology Information, 2016,35(4):172-177.
[6] 姜智超. 黑龙江省绥化市地热田地热资源评价及合理开发利用[D].长春:吉林大学,2015. Jiang Zhichao. The Evaluation and Rational Exploitation of Geothermal Resources in the Geothermal Field in Suihua City, Heilongjiang Province[D]. Changchun:Jilin University, 2015.
[7] 张思桃.中山虎池围地热田地热资源储量计算与评价研究[J].地下水,2018,40(6):33-36. Zhang Sitao. Study on Calculation and Evaluation of Geothermal Resource Reserves in Huchiwei (Weichi Lake) Geothermal Field,Zhongshan[J]. Ground Water, 2018,40(6):33-36.
[8] 赵剑畏,朱士鹏.南京汤山地下热水的控制因素与资源前景[J].地质学刊,1998(4):52-58. Zhao Jianwei, Zhu Shipeng. Control Factors and Resources Prospect of Geothermal Water in Tangshan Hill of Nanjing[J]. Journal of Geology, 1998(4):52-58.
[9] 李爱勇,朱春生,杨生.南京汤山温泉形成条件探讨[J].矿产勘查,2010,1(6):546-549. Li Aiyong, Zhu Chunsheng, Yang Sheng. The Research on Formation Condition of Tangshan Warm Spring in Nanjing[J]. Mineral Exploration, 2010,1(6):546-549.
[10] 朱春生. 南京汤山温泉形成条件与热源探讨[C]//江西省地质学会.2015地学新进展:第十三届华东六省一市地学科技论坛文集.南昌:江西省地质学会, 2015:316-319. Zhu Chunsheng. Forming Condirions and Heat Source of the Tangshan Hot Spring in Nanjing[C]//Jiangxi Geological Society. New Progress of Geosciences in 2015:Collection of the 13th Geosciences Science and Technology Forum of Six Provinces and One City in East China. Nanchang:Jiangxi Geological Society, 2015:316-319.
[11] 邹鹏飞,邱杨,王彩会.南京汤山温泉区地热水成因模式分析[J].高校地质学报,2015,21(1):155-162. Zou Pengfei, Qiu Yang, Wang Caihui. Analyses of the Genesis of Tangshan Hot Spring Area in Nanjing[J]. Geological Journal of China Universities, 2015,21(1):155-162.
[12] 栾光忠,邱汉学.中低温对流型地热系统的典型成因:南京汤山地热系统的分析[J].中国海洋大学学报,1998,28(1):160-164. Luan Guangzhong, Qiu Hanxue. The Type of Low-Medium Temperature Geothermal System of Convection Type:The Genesis Analysis of Tangshan Geothermal System in Nanjing[J]. Periodical of Ocean University of China, 1998,28(1):160-164.
[13] 张金华,魏伟,杜东,等.地热资源的开发利用及可持续发展[J].中外能源,2013,18(1):30-35. Zhang Jinhua, Wei Wei, Du Dong, et al. The Development, Utilization and Sustainable Development of Geothermal Resources[J]. Sino-Global Energy, 2013,18(1):30-35.
[14] 骆祖江,杜菁菁.基于热平衡分析的地埋管地源热泵换热方案模拟优化[J].农业工程学报,2018,34(13):246-254,320. Luo Zujiang, Du Jingjing. Heat Exchange Scheme Simulation Optimization for Ground Source Heat Pump System with Buried Pipes by Thermal Equilibrium Analysis[J]. Transactions of the Chinese Society of Agricultural Engineering, 2018,34(13):246-254, 320.
[15] 赵敬波. 地下热水流动与热量运移的三维非稳定流数值模拟研究[D].北京:中国地质大学(北京),2015. Zhao Jingbo. 3-Dimensional Numerical Modeling of Unsteady Thermal Groundwater Flow and Heat Transport[D]. Beijing:China University of Geosciences (Beijing), 2015.
[16] 周世玲,骆祖江,于丹丹,等.地下水源热泵系统热平衡预测三维数值模拟[J].中国煤炭地质,2014,26(9):34-39. Zhou Shiling, Luo Zujiang, Yu Dandan,et al. 3D Numerical Simulation of Groundwater Source Heat Pimp System Thermal Equilibrium Prediction[J]. Coal Geology of China, 2014,26(9):34-39.
[17] Donaldson I G, and Grant M A. An Estimate of the Resource Potential of New Zealand Geothermal Fields for Power Generation[J]. Geothermics. doi:10.1016/0375-6505(78)90014-7.
[18] Luo Zujiang, Wang Yan, Zhou Shiling, et al. Simulation and Prediction of Conditions for Effective Development of Shallow Geothermal Energy[J]. Applied Thermal Engineering, 2015, 91:370-376.
[1] Xia Yingjie, Chen Huabin, Chen Jian, Yao Mingyu, Yang Hai. Numerical Simulation of Hydraulic Fracturing of Deep Shale Reservoir with Different Construction Parameters [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(3): 924-936.
[2] Tu Junshan, Chen Hui, Deng Juzhi, Chen Kang, Li Yan, Yu Hui.  Influence of Dam on High-Density Electrical Methods and Correction Techniques [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(3): 1013-1025.
[3] Shu Longcang, Wei Shujing, Che Limuge, Wen Zhongqi, Liu Bo.

Quantification of Groundwater Response and Uncertainty Related to Ecological Water Conveyance in Xiliaohe Plain [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(2): 647-660.

[4] Huang Xingguo, Weng Yangyang, Han Li. Poroelastic Seismic Wave Forward Modeling Based on Generalized Recursive Convolution [J]. Journal of Jilin University(Earth Science Edition), 2026, 56(1): 377-385.
[5] Zhou Liuxiang, Yu Siqin, Chen Junhua, Liu Cheng, Chen Yi, Zhang Xinxin, . Numerical Simulation on Rock Breaking Process Using Combined Down-the-Hole Hammer and Percussive Drilling [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(5): 1608-1618.
[6] Yuan Chengwang, Zhang Min, Zhang Shaolong, Qin Lei, Guo Haiyang, Mo Haiying, Xin Yang. Retaining Structure Deformation and Surface Settlement Characteristics of Subway Foundation Pit in Changchun [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(3): 879-892.
[7] Yu Ziwang, Lu Shuaiyi, Bai Lin, Zheng Tianqi.  Research Progress on Rock Mechanics of CO2 Geological Sequestration [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(3): 930-942.
[8] Cheng Yao, , Lu Dandan, Zhao Longfei. Thermal Response of Microwave Heating in Oil Shale Reservoirs [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(2): 387-400.
[9] Diao Guojun , He Xin. Key Technology of Local Underground and Enlarged Excavation Construction of Subway Open-Cut Station Underpassing Existing Buildings [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(2): 536-549.
[10] Lin Xuemin, Xiao Honglin. Simulation and Application of Acoustic Remote Detection Logging Response in Fracture-Cavity Reservoirs: Taking Fracture-Cavity  Carbonate Reservoirs in Tahe Oilfield as an Example [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(1): 312-327.
[11] Wei Hongyu , Li Shichao, Wang Weian. Current Status and Future Prospects of Numerical Simulation Algorithms in Geodynamics [J]. Journal of Jilin University(Earth Science Edition), 2025, 55(1): 98-124.
[12] Wu Zekun, He Laisheng, Bai Xiaoyu, Ma Dongdong, Niu Yongchang, Zhao Guang, Sang Songkui, Yan Nan, Zhang Mingyi. Field Test and Numerical Simulation of Continuous Penetration of Jacked Pile in Layered Soil [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(4): 1291-1304.
[13] Pang Zhichao, Xiao Hua, Mao Chenfei, Chen Guojun, Liang Wankun, Gao Ming, Zhang Xiao. Lithological Characteristics and Logging Identification Methods of Gypsum-Bearing Strata in Southern Margin Area of  Junggar Basin [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(4): 1419-1431.
[14] Liu Huaishi, Zhao Xuejiao, Liu Yuxin, Fang Tingrui, Zhang Jing, Ji Yanju. Multi-Parameter Extraction of Superparamagnetic Effect Based on Improved Particle Swarm Optimization [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(3): 993-1002.
[15] Han Changyu, Zhao Haoting.

Influence of High Thermal Conductivity of Thermal Pipe in a Short Period of Subgrade Filling [J]. Journal of Jilin University(Earth Science Edition), 2024, 54(2): 570-580.

Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] LIU Jian-feng, CHI Xiao-guo, ZHOU Yan, WANG Tie-fu,JIN Wei, ZHOU Jian-bo, DONG Chun-yan, LI Guang-rong. Rb-Sr Isotopic Dating of the Jinlin Pluton by Whole Rock-Hornblende Method in the Northeast Xiao Hinggan Mountains[J]. J4, 2005, 35(06): 690 -0693 .
[2] HUANG Guan-xing, SUN Ji-chao, ZHANG Ying, LIU Jing-tao, ZHANG Yu-xi, JING Ji-hong. Content and Relationship of Heavy Metals in Groundwater of Sewage Irrigation Area in Pearl River Delta[J]. J4, 2011, 41(1): 228 -234 .
[3] XIAO Chang-lai,LIANG Xiu-juan, CUI Jian-ming, LAN Ying-ying,ZHANG Jun, LI Shu-lan, LIANG Rui-qi, ZHENG Ce. Whole Curve Matching Method for Aquifer Parameters Determination[J]. J4, 2005, 35(06): 751 -0755 .
[4] GUO Zhen-hua, WANG Pu-jun, YIN Chang-hai, HUANG Yu-long. Relationship Between Lithofacies and Logging Facies of the Volcanic Reservoir Rocks in Songliao Basin[J]. J4, 2006, 36(02): 207 -0214 .
[5] SUN Yong-he, FU Xiao-fei, LV Yan-fang, FU Guang, YAN Dong. Suction Role of Seismic Pumping and Physical Simulation on Hydrocarbon Migration and Accumulation[J]. J4, 2007, 37(1): 98 -0104 .
[6] XIE Zhong-lei, CHEN Zhuo,SUN Wen-tian, YIN Bo. Content of Fluoride in Tea Leaves and Distribution of Fluoride in Soils from Different Tea Gardens[J]. J4, 2008, 38(2): 293 -0298 .
[7] JIA Jun-tao, WANG Pu-jun, SHAO Rui,CHENG Ri-hui, ZHANG Bin, HOU Jing-tao, LI Jin-long, BIAN Wei-hua. Stratigraphical Sequence and Regional Correlation of Yingcheng Formation in the Southeast of Songliao Basin[J]. J4, 2007, 37(6): 1110 -1123 .
[8] KANG Li-ming,REN Zhan-li. Study on Multi-Parameters Discrimination Method for Flow Units-Taking W93 Wellblock in Ordos Basin as An Example[J]. J4, 2008, 38(5): 749 -0756 .
[9] XUE Yong-chao, CHENG Lin-song. The Diagenetic Reservoir Facies of Chang 8 Reservoir in Baibao Oilfield[J]. J4, 2011, 41(2): 365 -371 .
[10] JIANG Ji-yi, ZHANG Yu-dong, GU Hong-biao, ZUO Lan-li. Study on the Evaluation Model of Groundwater Environment Evolution Pattern Based on Grey Correlation Entropy[J]. J4, 2009, 39(6): 1111 -1116 .