Research on time-frequency electromagnetic method detection of deep karst thermal reservoir and prediction of favorable area in Dongli Lake of Tianjin
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摘要: 天津市地热资源储量丰富,蓟县系雾迷山组作为主力热储,是典型的碳酸盐岩型热储层。为查明天津东丽湖5 km以浅的地层结构和隐伏断裂、重点查明深部主力热储层空间分布及结构特征、预测地热有利区,笔者首次将主要用于深部油气勘探的时频电磁法应用于东丽湖深部地热资源探测。通过高标准的数据采集、精细化数据处理和电阻率约束反演,结合地震和钻孔资料进行层位标定,精细刻画了地层结构:推断了7条隐伏断裂,均为NNE与NWW向的拉张性正断层,其中沧东断裂F1作为区内主要热流体的必要通道,导热、储热并控制着地热异常区的分布和形态;雾迷山组热储层主要分布在沧东断裂西侧,顶界面埋深海拔约-2 200~-2 400 m,在电阻率剖面上显示为连续递增的A型电性特征,三、四段岩溶裂隙较发育时,热水在裂隙或断裂处的聚集引起局部低电阻率异常,出现H型电性特征,指示了目标深度内地热有利区的发育部位。据此,本文圈定地热有利区4 处,为后续地热资源的开发利用提供了重要的基础资料和支撑。Abstract: Tianjin is abundant in geothermal resources.As the main geothermal reservoir, Wumishan Formation of Jixian System is a typical carbonate reservoir.In order to find out the stratigraphic structure and concealed faults within 5 km of Dongli Lake in Tianjin, focus on the spatial distribution and structural characteristics of the main deep thermal reservoirs, and predict the favorable geothermal areas, the author first applied the timefrequency electromagnetic method, which is mainly used for deep oil and gas exploration, to the deep geothermal resources exploration of Dongli Lake, through high-standard data acquisition, fine data processing and resistivity inversion.Seismic and borehole data are used to calibrate the horizon and finely depict the stratigraphic structure.Seven concealed faults are inferred, all of which are NNE and NWW tensional normal faults.Cangdong Fault(F1) as the necessary channel of the main thermal fluid in the area, conducts heat, stores heat and controls the distribution and shape of geothermal anomaly areas; The thermal reservoir of Wumishan Formation is mainly distributed on the west side of Cangdong fault, the buried depth of the top interface is about-2200~-2400m, and the resistivity profile shows a continuous increasing A-type electrical characteristics.When the karst fissures in the third and fourth sections are relatively developed, the accumulation of hot water in the fissures or faults causes local low resistivity anomalies and H-type electrical characteristics.It indicates the development position of the favorable geothermal area in the target depth, and four favorable geothermal areas are delineated in this paper, which provides important basic data and support for the subsequent development and utilization of geothermal resources.
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[1] 王继革,陈瑞军,易志东,等.潘庄凸起奥陶系地热井施工风险分析[J].地质调查与研究,2013,36(1):71-75.
[2] WANG K.Background History and Status of Geothermal Utilization in Tianjin.Lectures on Geothermal Areas in China[R].Reykjavik, 2008:12-23.
[3] 李胜涛,岳冬冬,冯昭龙,等.天津东丽湖深部岩溶热储探测与储层参数研究及其开发利用潜力分析[J].中国地质,2022,49(6):1732-1746.
[4] 赵苏民,高宝珠,黎雪梅,等.沧东断裂(天津段)特征及导水导热性质分析[J].地质调查与研究,2007,30(2):121-127.
[5] 刘赞,陈海波,冯树友,等.沧东断裂潘庄凸起的东缘地热地质浅析[J].陕西水利,2018,(5):101-103.
[6] 李胜涛,岳冬冬,张秋霞,等.天津地区地热热源机制分析[J].地热能,2019,(4):3-9.
[7] 阮传侠,沈健,李立亮,等.天津市滨海新区东丽湖地区基岩热储回灌研究[J].地质通报,2017,36(8):1439-1449.
[8] 赵娜,王光辉,江国胜,等.天津东丽湖地区地热流体地球化学特征及其赋存环境[J].地质找矿论丛,2016,31(1):142-146.
[9] 王卫星,孙玉东,杨永江,等.天津市东丽湖地热对井的地质与水文地球化学特征[J].物探与化探,2010,(1):44-48.
[10] 胥博文,刘志龙,叶高峰,等.宁河凸起地热资源远景区评价分析-来自大地电磁测深法的证据[J].地球物理学进展,2018,33(6):2278-2284.
[11] 米晓利.大功率时频电磁法在城市干扰区地热勘查试验及效果[A].2019年中国地球科学联合学术年会[C],2019.
[12] 程万庆,高亮,胥博文,等.天津桥沽-看财庄地热田地球物理勘查[J].地质调查与研究,2012,(4):304-309.
[13] 李婧玮.天津东丽湖区基岩地下热水的三维非稳定流数值模拟[D].北京:中国地质大学(北京)水资源与环境学院,2015.
[14] 江国胜,孙晓林,冯树友,等.天津地热钻孔中奥陶系各组分层划分的方法探讨[J].地质调查与研究,2017,40(3):238-241.
[15] 林黎,赵苏民,阮传侠,等.天津地区深部蓟县系雾迷山组热储岩溶非均一性特征研究[J].现代地质,2007,21(4):600-604.
[16] 刘东林,闫佳贤,田光辉,等.基于TOUGH2.0 东丽湖地区雾迷山组热储资源潜力评价[J].工程勘察,2015,43(8):52-57.
[17] 彭展翔.天津市东丽湖地区雾迷山组地热回灌数值模拟及地热资源评价[D].北京:中国地质大学(北京)水资源与环境学院,2016.
[18] 周印明,胡晓颖,张兆芳,等.时频电磁法在探测煤矿富水地质异常体中的应用[A].中国地球物理学会第二十九届年会[C],2013.
[19] 周印明,刘雪军,张春贺.快速识别页岩气“甜点”目标的时频电磁勘探技术及应用[J].物探与化探,2015,39(1):60-63.
[20] DONG WB, ZHAO M, LIU F, et al.The time-frequency electromagnetic method and its application in Western China[J].Applied Geophysics, 2008, 5:127-135.
[21] 高昌.天津市深覆盖地区1:50000 区域地质调查综合物探研究报告[R].天津市地质调查研究所, 2003.
[22] 李俊峰,李丹,林黎,等.天津市周良庄地热田地热资源普查报告[R].天津地热勘查开发设计院,2006.
[23] 林黎,王坤,林建旺,等.天津市深部地热资源普查报告[R].天津地热勘查开发设计院,2000.
[24] 杨玉新,刘九龙,张文静,等.综合物探方法在天津地区地热勘查中的应用[J].世界地质,2009,28(3):351-360.
[25] 何展翔.人工源时间频率电磁测深方法,专利受理号03150098.6,授权专利号ZL03150098.6.
[26] 何展翔,陈忠昌,任文静,等.时频电磁(TFEM)勘探技术:数据采集系统[J].石油地球物理勘探,2020,55(5):1131-1138.
[27] 庞恒昌,高华.大功率恒流时频电磁仪[J].物探装备,2009,(201):49-53.
[28] 穆群英,魏启,庞恒昌,等.TFEM 组网式时频电磁采集系统组成及功能[J].物探装备,2017,27(1):67-70.
[29] DONG WB, ZHAO M, LIU F, et al.The time-frequency electromagnetic method and its application in Western China[J].Applied Geophysics, 2008, 5:127-135.
[30] HE ZX, SUO XD, HU ZZ, et al.Time frequency electromagnetic method for exploring favorable deep igneous rock targets:a case study from north Xinjiang[J].Journal of Environmental and Engineering Geophysics, 2019, 24(2):215-224.
[31] 张春贺,刘雪军,何兰芳,等.基于时频电磁法的富有机质页岩层系勘探研究[J].地球物理学报,2013,(9):3173-3183.
[32] 王志刚,何展翔,覃荆城,等.时频电磁技术的新进展及应用效果[J].石油地球物理勘探,2016,(A1):144-151.
[33] 何展翔,董卫斌,赵国,等.时频电磁(TFEM)技术:数据处理[J].石油地球物理勘探,2021,56(6):1391-1399.
[34] 李燕丽,金凤鸣,魏强,等.时频电磁法在冀中坳陷潜山及潜山内幕油气预测中的应用.石油地球物理勘探,2016,51(增刊):137-143.
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