Elastic reverse time migration based on first-order velocity-dilatation-rotation equations using the optical flow vector

GEOPHYSICS Pub Date : 2024-04-05 DOI:10.1190/geo2023-0198.1
Chuang Xie, Jianhua Wang, Peng Song, Jun Tan, Zhaolun Liu, Yandong Wang
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Abstract

The determination of the P- and S-wave propagation directions is crucial for achieving wavefield decomposition, polarity reversal correction, and noise suppression in elastic reverse time migration (RTM). Compared with the conventional decoupled elastic wave equation, the first-order velocity-dilatation-rotation equations enable a more accurate computation of propagation directions for P- and S-waves. Moreover, compared with the Poynting vector, the optical flow vector signifies the wavefield propagation directions more accurately. To effectively enhance the accuracy of elastic wave imaging, we propose an elastic RTM based on first-order velocity-dilatation-rotation equations using the optical flow vector. Numerical tests illustrate that the proposed method, with or without noise, can better eliminate the migration artifacts and improve the imaging accuracy of the elastic RTM than conventional methods, achieving more accurate wavefield decomposition and superior S-wave polarity reversal correction.
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基于一阶速度-膨胀-旋转方程的弹性反向时间迁移,使用光流矢量
确定 P 波和 S 波的传播方向对于实现波场分解、极性反转校正以及弹性反向时间迁移(RTM)中的噪声抑制至关重要。与传统的解耦弹性波方程相比,一阶速度-膨胀-旋转方程能更精确地计算 P 波和 S 波的传播方向。此外,与 Poynting 向量相比,光流向量能更准确地表示波场的传播方向。为了有效提高弹性波成像的精确度,我们提出了一种基于一阶速度-膨胀-旋转方程的弹性 RTM 方法。数值测试表明,与传统方法相比,无论有无噪声,所提出的方法都能更好地消除迁移伪影,提高弹性 RTM 的成像精度,实现更精确的波场分解和出色的 S 波极性反转校正。
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