Internal-multiple-elimination with application to migration using two-way wave equation depth-extrapolation scheme

IF 6 1区 工程技术 Q2 ENERGY & FUELS Petroleum Science Pub Date : 2025-01-01 DOI:10.1016/j.petsci.2024.06.021
Jia-Chun You , Gu-Lan Zhang , Xing-Guo Huang , Xiang-Wen Li , Jun-Xing Cao
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Abstract

Internal multiple interference, affecting both seismic data processing and interpretation, has been observed for long time. Although great progress has been achieved in developing a variety of internal-multiple-elimination (IME) methods, how to increase accuracy and reduce cost of IME still poses a significant challenge. A new method is proposed to effectively and efficiently eliminate internal multiples, along with its application in internal-multiple-eliminated-migration (IMEM), addressing this issue. This method stems from two-way wave equation depth-extrapolation scheme and associated up/down wavefield separation, which can accomplish depth-extrapolation of both up-going and down-going wavefields simultaneously, and complete internal-multiple-elimination processing, adaptively and efficiently. The proposed method has several features: (1) input data is same as that for conventional migration: source signature (used for migration only), macro velocity model, and receiver data, without additional requirements for source/receiver sampling; (2) method is efficient, without need of iterative calculations (which are typically needed for most of IME algorithms); and (3) method is cost effective: IME is completed in the same depth-extrapolation scheme of IMEM, without need of a separate processing and additional cost. Several synthesized data models are used to test the proposed method: one-dimensional model, horizontal layered model, multi-layer model with one curved layer, and SEG/EAGE Salt model. Additionally, we perform a sensitivity analysis of velocity using smoothed models. This analysis reveals that although the accuracy of velocity measurements impacts our proposed method, it significantly reduces internal multiple false imaging compared to traditional RTM techniques. When applied to actual seismic data from a carbonate reservoir zone, our method demonstrates superior clarity in imaging results, even in the presence of high-velocity carbonate formations, outperforming conventional migration methods in deep strata.
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利用双向波方程深度外推法将内部多重消除应用于迁移
影响地震数据处理和解释的内部多重干扰由来已久。尽管在开发各种内部多重干扰消除(IME)方法方面取得了很大进展,但如何提高内部多重干扰消除的精度并降低成本仍是一个重大挑战。针对这一问题,我们提出了一种有效消除内部多重的新方法,并将其应用于内部多重消除迁移(IMEM)中。该方法源于双向波方程深度外推方案和相关的上/下行波场分离,可同时完成上行波场和下行波场的深度外推,并自适应、高效地完成内部多重消除处理。该方法有以下几个特点(1) 输入数据与传统迁移方法相同:源特征(仅用于迁移)、宏观速度模型和接收器数据,无需额外的源/接收器采样要求;(2) 方法高效,无需迭代计算(大多数 IME 算法通常需要迭代计算);(3) 方法具有成本效益:IME 采用与 IMEM 相同的深度外推法,无需单独处理和额外费用。我们使用了几种合成数据模型来测试所提出的方法:一维模型、水平分层模型、带一个弯曲层的多层模型以及 SEG/EAGE 盐模型。此外,我们还使用平滑模型对速度进行了敏感性分析。分析结果表明,虽然速度测量的准确性会影响我们提出的方法,但与传统的 RTM 技术相比,它能显著减少内部多重错误成像。当应用于碳酸盐岩储层区的实际地震数据时,我们的方法显示了成像结果的卓越清晰度,即使存在高速碳酸盐岩层,在深地层中也优于传统的迁移方法。
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来源期刊
Petroleum Science
Petroleum Science 地学-地球化学与地球物理
CiteScore
7.70
自引率
16.10%
发文量
311
审稿时长
63 days
期刊介绍: Petroleum Science is the only English journal in China on petroleum science and technology that is intended for professionals engaged in petroleum science research and technical applications all over the world, as well as the managerial personnel of oil companies. It covers petroleum geology, petroleum geophysics, petroleum engineering, petrochemistry & chemical engineering, petroleum mechanics, and economic management. It aims to introduce the latest results in oil industry research in China, promote cooperation in petroleum science research between China and the rest of the world, and build a bridge for scientific communication between China and the world.
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