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应用地球物理  2020, Vol. 17 Issue (3): 321-337    DOI: 10.1007/s11770-020-0827-5
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中国东北寒区沉积型盆地地热系统与地热分布特征*
范振宇1,熊盛青♦2, 3,于长春2,张贵宾1,张心勇4,胡斌1
1.中国地质大学(北京)地球物理与信息技术学院,北京 100083;
2.中国自然资源航空物探遥感中心,北京100083;
3.自然资源部航空地球物理与遥感地质重点实验室,北京 10083;
4.黑龙江省生态地质调查研究总院,哈尔滨 150030
Geothermal distribution characteristics and sedimentary basin geothermal system in the severe cold region of Northeast China*
Fan Zhen-Yu1, Xiong Sheng-Qing♦2,3, Yu Chang-Chun 2, Zhang Gui-Bin 1, Zhang Xin-Yong 4, and Hu Bin 1
1. School of Geophysics and Information Technology, China University of Geosciences (Beijing), Beijing 100083, China.
2. China Aero Geophysical Survey & Remote Sensing Center for Natural Resources, Beijing 100083, China.
3. Key Laboratory of Airborne Geophysics & Remote Sensing Geology, Ministry of Natural Resources, Beijing 10083,China.
4. Heilongjiang Provincial Ecological Geological Survey & Research Institute, Heilongjiang 150030, China.
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摘要 本文以黑龙江省伊通—依兰断裂带内胜利断陷、汤原断陷盆地,以及松辽盆地北部三个地区作为地热异常研究区,基于深部热储的温度,热液流体通道,盖层厚度与热传递方式几个控制地热成藏的主要因素,勘察了该区地下干热岩地热资源系统。首先对航磁数据反演计算获得居里等温面深度,分析地热分布特征,估算深部热源温度;其次,开展可控源音频大地电磁与大地电磁法,获得研究区深部电性结构,确定盖层厚度与热液流体通道;最后由24 口井测井温度曲线获得钻孔的地热稳态测温数据、水样化学分析数据,推断热传递方式。基于以上结果,构建了该区沉积型盆地地热系统模型。研究结果表明:研究区居里等温面深度在17~39km,松辽盆地北部沉积盖层电阻率偏低,深部存在热源,以热对流为主,胜利断陷盆地和汤原断陷盆地以热传导为主。基于地热系统模型,认为松辽盆地的大庆至林甸区域,具备热对流为主的沉积型盆地地热系统的条件,幔源热物质通过断裂通道上涌产生热交换,巨厚的沉积盖层有利减少热量的散失,可成为可持续开发利用的干热岩有利靶区。
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关键词松辽盆地   居里等温面   地热系统   干热岩     
Abstract: In this study, Shengli fault depression, Tangyuan fault basin, and northern Songliao Basin in Yitong?Yilan fault zone of Heilongjiang province are considered the research areas for geothermal anomaly. Based on the temperature of the deep thermal reservoir, the hydrothermal fl uid channel, caprock thickness, and the mode of heat transfer, which are the main factors controlling the geothermal reservoir formation, we examined geothermal resource system of the underground HDR in this area. First, we inversed the aeromagnetic data, calculated the Curie isotherm depth, analyzed the geothermal distribution characteristics, and estimated the temperature of the deep heat source. Second, we applied the controlled source audio frequency magnetotelluric (CSAMT) and magnetotelluric (MT) methods to obtain the deep electrical structure of the study area. We determined the thickness of the caprock and the hydrothermal fluid channel. Finally, we obtained the borehole geothermal steady-state temperature measurement data and water sample chemical analysis data from the logging temperature curves of 24 wells to infer the mode of heat transfer. Based on the results, we built a model of the geothermal system of the sedimentary basin in this area. The results show that the depth of Curie isotherm in the study area is 17–39 km. The resistivity of sedimentary caprock in the north of Songliao basin is low, and there exists a deep heat source, which is mainly thermal convection. In contrast, in Shengli and Tangyuan fault basins, heat conduction is dominant. Based on the geothermal system model, we conclude that the area from Daqing to Lindian in Songliao basin has a thermal-convection-dominated sedimentary basin geothermal system. Heat exchange is realized by the upwelling of mantle-derived thermal materials through fracture channels. The thick sedimentary caprock reduces the heat loss. It can be a target for sustainable development and utilization of HDR
Key wordsSongliao basin   Curie isotherm   geothermal system   HDR   
收稿日期: 2019-03-08;
基金资助:

本项目由国家重点研发计划课题(编号:2017YFC0602201)资助。

通讯作者: 熊盛青(Email: xsqagrs@126.com)     E-mail: xsqagrs@126.com
作者简介: 范振宇,中国地质大学(北京)球物理与信息技术学院博士研究生,2016 年硕士毕业于中国地质大学(北京),目前主要从事于地球物理电法、磁法反演研究及应用。Email:3010170021@cugb.edu.cn
引用本文:   
. 中国东北寒区沉积型盆地地热系统与地热分布特征*[J]. 应用地球物理, 2020, 17(3): 321-337.
. Geothermal distribution characteristics and sedimentary basin geothermal system in the severe cold region of Northeast China*[J]. APPLIED GEOPHYSICS, 2020, 17(3): 321-337.
 
没有本文参考文献
[1] 李子顺. 高密度偏移技术原理与应用[J]. 应用地球物理, 2012, 9(3): 286-292.
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