基于坐标变换和地震速度中各向异性因素的地震图像改进

IF 1.9 4区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
Nabanita Pradhan, Saurabh Datta Gupta
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引用次数: 0

摘要

Jaisalmer次盆地Bandha地区Goru组地震特征的成像和解释面临着独特的挑战,因为该地区地质结构复杂,具有显著的横向速度变化、倾斜侧翼、陡峭反射面和多断裂带的特点。该研究介绍了一种新的基于极坐标速度的逆时偏移(RTM)技术,该技术将各向异性压缩速度与转换后的周向和径向速度相结合,从而增强了复杂地质环境下的地震成像能力。相移偏移、基于传统笛卡尔速度的RTM和基于极性速度的RTM的对比分析表明,极性方法能够准确捕捉地震波的球面传播,特别是在各向异性介质中。研究结果表明,基于周向速度的RTM在远角度对陡倾角和复杂断裂带具有较好的成像效果,提高了断层检测精度,而基于径向速度的RTM在近角度具有较好的成像效果,提高了整体地震分辨率。此外,传统的笛卡尔RTM可以有效地成像地堑和地堑构造,但在陡峭倾斜地区存在局限性。通过将RTM方法与极性速度模型相结合,本研究显著提高了构造复杂、各向异性地层油气勘探的成像精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Improvement of Seismic Image Based on Coordinate Transformation and Incorporation of Anisotropy Factors in Seismic Velocity

Improvement of Seismic Image Based on Coordinate Transformation and Incorporation of Anisotropy Factors in Seismic Velocity

Imaging and interpreting seismic signatures in the Goru Formation of the Bandha region in the Jaisalmer Sub-basin presents unique challenges due to its complex geological structure, characterized by significant lateral velocity variations, dipping flanks, steep reflectors, and multiple fault zones. This study introduces a novel polar coordinate-velocity based Reverse Time Migration (RTM) technique that integrates anisotropic compressional velocity with transformed circumferential and radial velocities, enabling enhanced seismic imaging in such intricate geological settings. Comparative analysis of phase-shift migration, conventional cartesian velocity-based RTM, and the proposed polar velocity-based RTM demonstrate the superiority of the polar approach, which accurately captures the spherical propagation of seismic waves, particularly in anisotropic media. The findings reveal that circumferential velocity-based RTM offers superior imaging for steep dips and complex fault zones at far angles, improving fault detection accuracy, while radial velocity-based RTM excels at near angles, enhancing overall seismic resolution. In addition, conventional cartesian RTM effectively images horst and graben structures but faces limitations in steeply dipping areas. By advancing RTM methodologies with polar velocity models, this study significantly improves imaging accuracy for hydrocarbon exploration in structurally complex, anisotropic formations.

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来源期刊
pure and applied geophysics
pure and applied geophysics 地学-地球化学与地球物理
CiteScore
4.20
自引率
5.00%
发文量
240
审稿时长
9.8 months
期刊介绍: pure and applied geophysics (pageoph), a continuation of the journal "Geofisica pura e applicata", publishes original scientific contributions in the fields of solid Earth, atmospheric and oceanic sciences. Regular and special issues feature thought-provoking reports on active areas of current research and state-of-the-art surveys. Long running journal, founded in 1939 as Geofisica pura e applicata Publishes peer-reviewed original scientific contributions and state-of-the-art surveys in solid earth and atmospheric sciences Features thought-provoking reports on active areas of current research and is a major source for publications on tsunami research Coverage extends to research topics in oceanic sciences See Instructions for Authors on the right hand side.
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