利用与角度相关的成像条件进行声学和弹性反向时间迁移,以成像陡倾结构

IF 7.5 1区 地球科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Pengfei Wang;Jidong Yang;Jianping Huang;Jiaxing Sun;Yiwei Tian
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引用次数: 0

摘要

在地震勘探中,由于大入射角的弱光照,地下陡倾角结构,如埋藏的山体、断层带和盐翼,很难准确成像。为缓解这一问题,我们提出了一种与角度相关的声学和弹性反演时间迁移(ERTM)成像条件,以提高陡倾角结构的成像质量。我们首先使用基于希尔伯特变换的波场分解方法,将外推波场分解为上下左右走向的分量。我们观察到,左行波场和右行波场可以准确成像陡倾角结构,而上行波场和下行波场主要用于成像小倾角层。然后,开发了一种与角度相关的成像条件,利用分解后的定向波场来提高平坦层和陡倾角结构的成像质量。在 ERTM 中,定向波场分解后,矢量赫尔姆霍兹分解用于解耦 PS 波,以生成 PP 和 PS 图像。数值示例表明,对于陡倾结构,所建议的方法比传统的 RTM 能生成更精确的图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Acoustic and Elastic Reverse-Time Migration With an Angle-Related Imaging Condition for Imaging Steeply-Dipping Structures
The subsurface steeply-dipping structures, such as buried hills, fault zones, and salt flanks, are difficult to accurately image in seismic exploration due to weak illumination from large incident angles. To mitigate this issue, we propose an angle-related imaging condition for acoustic and elastic reverse-time migration (ERTM) to improve the image quality of steeply-dipping structures. We first use the wavefield decomposition method based on the Hilbert transform to decompose the extrapolated wavefield into up–down-left–right going components. We observed that the left- and right-going wavefields can accurately image steeply-dipping structures, while the up- and down-going wavefields mainly contribute to the layers with small dipping angles. Then, an angle-related imaging condition is developed to use the decomposed directional wavefields to enhance the image quality of both flat layers and steeply-dipping structures. In ERTM, after the directional wavefield decomposition, the vector Helmholtz decomposition is used to decouple PS waves to produce PP and PS images. Numerical examples demonstrate that the proposed method produces more accurate images than conventional RTM for steeply-dipping structures.
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来源期刊
IEEE Transactions on Geoscience and Remote Sensing
IEEE Transactions on Geoscience and Remote Sensing 工程技术-地球化学与地球物理
CiteScore
11.50
自引率
28.00%
发文量
1912
审稿时长
4.0 months
期刊介绍: IEEE Transactions on Geoscience and Remote Sensing (TGRS) is a monthly publication that focuses on the theory, concepts, and techniques of science and engineering as applied to sensing the land, oceans, atmosphere, and space; and the processing, interpretation, and dissemination of this information.
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