Hydrogeochemical Characteristics and Genesis of the Chazi Geothermal Field Area in Tibet

Author:

Song Mingzhong1ORCID,Lang Xujuan2345ORCID,Zhong Zhennan1ORCID,Kang Fengxin6ORCID,Nan Dawa7,Li Haoting8,Yu Haowen2,Liu Shaoyun9,Han Sihang2,Liu Zhao2345

Affiliation:

1. No. 6 Institute of Geology and Mineral Resources Exploration of Shandong Province, Weihai, Shandong 264209, China

2. School of Water Resources & Environment, Hebei GEO University, Shijiazhuang 050031, China

3. Hebei Province Key Laboratory of Sustained Utilization and Development of Water Resources, Shijiazhuang 050031, China

4. Hebei Province Collaborative Innovation Center for Sustainable Utilization of Water Resources and Optimization of Industrial Structure, Shijiazhuang 050031, China

5. Hebei Province Key Discipline of Hydrology and Water Resources, Shijiazhuang 050031, China

6. Shandong Provincial Bureau of Geology & Mineral Resources, Jinan 250013, China

7. The Geothermal Geological Team of Tibet, Tibet Bureau of Exploration & Development of Geology and Mineral Resources, Lhasa 850032, China

8. The Second Hydrogeological Geological Exploration Institute of Anhui Geological Survey Bureau, Wuhu 241000, China

9. Henan Yellow River Hydrology Survey and Design Institute, Zhengzhou 450000, China

Abstract

The Chazi geothermal field area is located in the large region of Shigatse in southern Tibet. The geothermal resources in this area are abundant, but their exploitation and utilization are low. By studying the water chemistry and isotope characteristics of geochemical fluids in the study area, information on water chemistry, heat storage temperature, recharge source, recharge elevation, and circulation depth was obtained. These results provide a scientific theoretical basis for improving the genetic mechanism of high-temperature geothermal systems in the study area. The type of geothermal fluid hydrochemicals in this area is mainly HCO3–Na. The isotopic geochemical method was used to determine that the recharge source of geothermal fluids was atmospheric precipitation, and the recharge elevation was 5200–6000 m. The geochemical thermometer, Na–K–Mg equilibrium diagram, and silica-enthalpy mixed model indicated the shallow and deep thermal storage temperatures of approximately 150 and 200°C, respectively, and the average circulation depth of 1163.38 m in the study area. Combined with the fracture structure and magmatic activity characteristics of the southwest Qinghai-Tibet Plateau, the source, storage, cover, and general situation of the area were preliminarily summarised, and the conceptual model of geothermal origin was established. The results can provide a scientific theoretical basis for the mechanism of high-temperature geothermal systems and subsequent drilling and resource development.

Funder

Central Government Guides Local Projects

Publisher

Hindawi Limited

Subject

General Earth and Planetary Sciences

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