论文标题
有限差模拟中声学和弹性波传播的显式耦合
Explicit coupling of acoustic and elastic wave propagation in finite difference simulations
论文作者
论文摘要
我们提出了一种机制,可以显式地将2D声学和各向同性弹性波系统的有限差分离散化,这些弹性波系统被直接接口分开。这种耦合模拟允许将弹性模型应用于地质勘探研究特别感兴趣的地质区域(例如,盐体周围的区域),而计算上更容易捕捉的声学模型仍在背景区域中应用。具体而言,声波系统以速度和压力表示,而弹性波系统则以速度和应力表示。两种系统都以一阶形式构成,并在交错的网格上离散。标准有限差分运算符的特殊变体,即具有逐个部分属性的操作员,用于空间衍生物的近似。惩罚项也称为同时近似项,旨在在有限差异化离散化中微弱地施加弹性 - 声学界面条件,并将弹性和声波模拟融为一体。通过提出的机制,我们能够稳定,准确地执行耦合的弹性声波模拟。此外,可以证明,连续系统中的能源持有性能可以通过经过精心设计的罚款条款保存。
We present a mechanism to explicitly couple the finite-difference discretizations of 2D acoustic and isotropic elastic wave systems that are separated by straight interfaces. Such coupled simulations allow the application of the elastic model to geological regions that are of special interest for seismic exploration studies (e.g., the areas surrounding salt bodies), while with the computationally more tractable acoustic model still being applied in the background regions. Specifically, the acoustic wave system is expressed in terms of velocity and pressure while the elastic wave system is expressed in terms of velocity and stress. Both systems are posed in first-order forms and discretized on staggered grids. Special variants of the standard finite-difference operators, namely, operators that possess the summation-by-parts property, are used for the approximation of spatial derivatives. Penalty terms, which are also referred to as the simultaneous approximation terms, are designed to weakly impose the elastic-acoustic interface conditions in the finite-difference discretizations and couple the elastic and acoustic wave simulations together. With the presented mechanism, we are able to perform the coupled elastic-acoustic wave simulations stably and accurately. Moreover, it is shown that the energy-conserving property in the continuous systems can be preserved in the discretization with carefully designed penalty terms.