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Research and application of seismic forward simulation technology in deep reflection seismic profile detection |
WANG Guang-Wen1,2( ), WANG Hai-Yan1,2( ), LI Hong-Qiang3, LI Wen-Hui1,2, PANG Yong-Xiang4 |
1. Lithosphere Center,Institute of Geology,Chinese Academy of Geological Sciences,Beijing 100037,China 2. Deep Earth Dynamics Key Lab of Ministry of Natural Resources,Beijing 100037,China 3. Chinese Academy of Geological Sciences,Beijing 100037,China 4. CNPC Logging Company Limited,Tianjin Branch,Tianjin 300280,China |
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Abstract Seismic wave forward modeling technology is widely used in shallow exploration.This method can combine geological model and seismic model organically to verify and guide the acquisition,processing and interpretation of seismic data.The deep reflection seismic profile detection technology based on the oil reflection seismic technology has been very mature after decades of development and application.But up to now,the application of seismic wave forward modeling in deep reflection seismic profile is very insufficient.In this paper,the deep reflection seismic profile across Sichuan Basin was used to carry out forward modeling.By comparing and fitting the horizon of forward simulation data and actual seismic data,the parameters such as velocity and horizon were constantly modified,and the final depth domain geological model was established,which provides more accurate stratigraphic information such as crustal thickness and Moho depth for structural profile.Through the geological model in depth domain,it is revealed that the angle of Neoproterozoic paleosubduction in the northwest margin of Yangtze plate was about 30 °,and the depth of subduction reached 60 km.
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Received: 02 April 2020
Published: 20 August 2021
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Corresponding Authors:
WANG Hai-Yan
E-mail: 1175712161@qq.com;hyanwhy@126.com
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Location of deep seismic reflection profile
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采集参数 | 0~210 km段 | 210~270 km段 | 270~330 km段 | 前放增益/dB | 12 | 12 | 30 | 野外采样率/ms | 2 | 2 | 2 | 记录长度/s | 27 | 30 | 20 | 记录道数 | 840 | 700 | 960 | 道间距/m | 40 | 40 | 30 | 最小偏移距/m | 20 | 20 | 15 | 最大偏移距/m | 16 780 | 13 980 | 15 795 | 覆盖次数 | 60 | 50 | 90 | 井深/m | 25 | 25、40(大炮) | 10~25 | 药量/kg | 20~40 100(大炮) | 48 100(大炮) | 30
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Data acquisition parameters of deep reflection seismic profiles across Sichuan Basin
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Initial geological model
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| 厚度/km | 速度/(km·s-1) | 上地壳 | 12~16 | 6.0~6.2 | 中地壳 | 6~8 | 6.3~6.4 | 下地壳 | 16~18 | 6.6~7.2 |
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Crustal thickness-velocity of Sichuan Basin
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| 层位 | 层速度/(km·s-1) | 界面最大深度/km | 上地壳 | 第一层 | 4.30~5.60 | 12.0 | | 第二层 | 5.80~6.15 | 19.2 | 中地壳 | 第一层 | 6.25~6.42 | 28.0 | 下地壳 | 第一层 | 6.50~6.65 | 39.8 | | 第二层 | 6.68~6.90 | 50.7 |
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Crustal velocity structure of Sichuan Basin
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测线位置/km | 0 | 120 | 240 | 330 | 第一层速度 | 4 500 | 4 300 | 3 600 | 3 500 | 第二层速度 | 4 700 | 5 000 | 4 000 | 4 100 | 第三层速度 | 5 800 | 6 000 | 4 600 | 4 800 | 第四层速度 | 6 900 | 7 000 | 6 900 | 6 900 | Moho面 | 测线西北方向: 8 200 | 测线东南方向: 8 000 |
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Initial velocity model horizon velocitym/s
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Spectrum analysis of original single-shot
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Wavelet spectrum a—real time;b—amplitude spectrum;c—quadrature time;d—phase spectrum
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Ray tracing routing a—zero offset seismic record;b—common shot gather record
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Comparison of common shot point gather records base map—original single shot record;overlay map—simulate single shot record;a1、a2—100km comparison of ray tracing forward simulation before and after single shot correction;b1、b2—200km comparison of ray tracing forward simulation before and after single shot correction;c1、c2—280km comparison of ray tracing forward simulation before and after single shot correction;d1、d2—280km comparison of wave equation forward modeling before and after single shot correction
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| 测线位置 | 0 km | 120 km | 240 km | 330 km | 第一次速度迭代 | 第一层 | 4.5 | 4.3 | 3.6 | 3.5 | 第二层 | 4.7 | 5.0 | 4.0 | 4.1 | 第三层 | 5.8 | 6.0 | 4.6 | 4.8 | 第四层 | 6.9 | 7.0 | 6.9 | 6.9 | Moho | 测线西北方向: 8.0 | 测线东南方向: 7.8 | 第二次速度迭代 | 第一层 | 4.5 | 4.6 | 3.8 | 3.6 | 第二层 | 4.6 | 5.3 | 4.2 | 4.3 | 第三层 | 6.0 | 6.2 | 4.4 | 4.5 | 第四层 | 7.0 | 6.8 | 6.9 | 7.0 | Moho | 测线西北方向: 8.2 | 测线东南方向: 8.0 | 第三次速度迭代 | 第一层 | 4.5 | 4.3 | 3.6 | 3.7 | 第二层 | 4.7 | 5.0 | 4.0 | 4.1 | 第三层 | 6.0 | 6.4 | 4.6 | 4.8 | 第四层 | 6.7 | 6.8 | 6.8 | 6.9 | Moho | 测线西北方向: 8.2 | 测线东南方向: 8.0 |
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Iteration velocities offorward simulation horizonskm/s
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10]) ">
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Migration stack profile(revised according to reference [10])
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Contrasting map between simulation data and seismic stack data base map—deep reflection stacked profile;overlay map—zero offset simulation profile;a1、a2—comparison before and after iterative correction of the first layer;b1、b2—comparison before and after iterative correction of the second layer;c1、c2—comparison before and after iterative correction of the third layer;d1、d2—comparison of the fourth layer and the fifth layer before and after iterative correction
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Final geological model of Sichuan Basin
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