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首页> 外文期刊>Pure and Applied Geophysics >Wave Propagation, Scattering and Imaging Using Dual-domain One-way and One-return Propagators
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Wave Propagation, Scattering and Imaging Using Dual-domain One-way and One-return Propagators

机译:使用双域单向和单向传播器的波传播,散射和成像

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— Dual-domain one-way propagators implement wave propagation in heterogeneous media in mixed domains (space-wavenumber domains). One-way propagators neglect wave reverberations between heterogeneities but correctly handle the forward multiple-scattering including focusing/defocusing, diffraction, refraction and interference of waves. The algorithm shuttles between space-domain and wavenumber-domain using FFT, and the operations in the two domains are self-adaptive to the complexity of the media. The method makes the best use of the operations in each domain, resulting in efficient and accurate propagators. Due to recent progress, new versions of dual-domain methods overcame some limitations of the classical dual-domain methods (phase-screen or split-step Fourier methods) and can propagate large-angle waves quite accurately in media with strong velocity contrasts. These methods can deliver superior image quality (high resolution/high fidelity) for complex subsurface structures. One-way and one-return (De Wolf approximation) propagators can be also applied to wave-field modeling and simulations for some geophysical problems. In the article, a historical review and theoretical analysis of the Born, Rytov, and De Wolf approximations are given. A review on classical phase-screen or split-step Fourier methods is also given, followed by a summary and analysis of the new dual-domain propagators. The applications of the new propagators to seismic imaging and modeling are reviewed with several examples. For seismic imaging, the advantages and limitations of the traditional Kirchhoff migration and time-space domain finite-difference migration, when applied to 3-D complicated structures, are first analyzed. Then the special features, and applications of the new dual-domain methods are presented. Three versions of GSP (generalized screen propagators), the hybrid pseudo-screen, the wide-angle Padé-screen, and the higher-order generalized screen propagators are discussed. Recent progress also makes it possible to use the dual-domain propagators for modeling elastic reflections for complex structures and long-range propagations of crustal guided waves. Examples of 2-D and 3-D imaging and modeling using GSP methods are given.
机译:—双域单向传播器在混合域(空间波数域)的异构介质中实现波传播。单向传播器忽略了异质性之间的波混响,但正确处理了前向多重散射,包括聚焦/散焦,衍射,折射和波干涉。该算法使用FFT在空间域和波数域之间穿梭,并且两个域中的运算自适应适应媒体的复杂性。该方法充分利用了每个域中的操作,从而产生了有效而准确的传播器。由于最近的进展,新版本的双域方法克服了传统双域方法(相位屏蔽或分步傅里叶方法)的某些局限性,并且可以在具有强速度对比的介质中相当精确地传播大角度波。这些方法可以为复杂的地下结构提供出色的图像质量(高分辨率/高保真度)。单向和单向(De Wolf近似)传播器也可以用于某些地球物理问题的波场建模和模拟。在本文中,对Born,Rytov和De Wolf近似值进行了历史回顾和理论分析。还回顾了经典的相位屏蔽或分步傅里叶方法,然后对新的双域传播器进行了总结和分析。结合几个实例,对新型传播器在地震成像和建模中的应用进行了综述。对于地震成像,首先分析了传统Kirchhoff偏移和时空域有限差分偏移应用于3-D复杂结构的优缺点。然后介绍了新的双域方法的特殊功能和应用。讨论了三种版本的GSP(广义屏幕传播器),混合伪屏幕,广角Padé屏幕和高阶广义屏幕传播器。最近的进展也使得使用双域传播器为复杂结构的弹性反射和地壳导波的远距离传播建模成为可能。给出了使用GSP方法进行2-D和3-D成像和建模的示例。

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