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Numerical modeling of mechanical wave propagation

机译:机械波传播的数值模拟

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The numerical modeling of mechanical waves is currently a fundamental tool for the study and investigation of their propagation in media with heterogeneous physical properties and/or complex geometry, as, in these cases, analytical methods are usually not applicable. These techniques are used in geophysics (geophysical interpretation, subsoil imaging, development of new methods of exploration), seismology (study of earthquakes, regional and global seismology, accurate calculation of synthetic seismograms), in the development of new methods for ultrasonic diagnostics in materials science (non-destructive methods) and medicine (acoustic tomography). In this paper we present a review of numerical methods that have been developed and are currently used. In particular we review the key concepts and pioneering ideas behind finite-difference methods, pseudospectral methods, finite-volume methods, Galerkin continuous and discontinuous finite-element methods (classical or based on spectral interpolation), and still others such as physics-compatible, and multiscale methods. We focus on their formulations in time domain along with the main temporal discretization schemes. We present the theory and implementation for some of these methods. Moreover, their computational characteristics are evaluated in order to aid the choice of the method for each practical situation.
机译:机械波的数值建模是目前是研究和调查它们在具有异质物理性质和/或复杂几何形状的介质中传播的基本工具,如在这些情况下,分析方法通常不适用。这些技术用于地球物理(地球物理解释,底土成像,新勘探方法的发展),地震学(地震,区域和全球地震学,精确计算合成地震图),在制定材料中超声诊断方法的开发科学(非破坏性方法)和药物(声学断层扫描)。在本文中,我们介绍了已经开发的数值方法并目前使用的综述。特别是我们审查了有限差分方法,假谱方法,有限体积方法,Galerkin连续和不连续有限元方法(经典或基于光谱插值),以及仍然是物理兼容的其他人,和多尺度方法。我们专注于时代域中的配方以及主要的时间离散化方案。我们为这些方法提供了理论和实施。此外,评估其计算特性,以帮助选择每个实际情况的方法。

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