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Consistent modeling of boundaries in acoustic finite-difference time-domain simulations

机译:声学有限差分时域仿真中边界的一致建模

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摘要

The finite-difference time-domain method is one of the most popular for wave propagation in the time domain. One of its advantages is the use of a structured staggered grid, which makes it simple and efficient on modern computer architectures. A drawback, however, is the difficulty in approximating oblique boundaries, having to resort to staircase approximations. In many scattering problems this means that the grid resolution required to obtain an accurate solution is much higher than what is dictated by propagation in a homogeneous material. In this paper zero boundary data are considered, first for the velocity and then the pressure. These two forms of boundary conditions model perfectly rigid and pressure-release boundaries, respectively. A simple and efficient method to consistently model curved rigid boundaries in two dimensions was developed in Tornberg and Engquist [J. Comput. Phys. 227, 6922-6943 (2008)]. Here this treatment is generalized to three dimensions. Based on the approach of this method, a technique to model pressure-release surfaces with second order accuracy and without additional restriction on the timestep is also introduced. The structure of the standard method is preserved, making it easy to use in existing solvers. The effectiveness is demonstrated in several numerical tests.
机译:时域有限差分法是最流行的波传播方法之一。它的优点之一是使用结构化的交错网格,这使其在现代计算机体系结构上既简单又高效。然而,缺点是难以逼近倾斜边界,而不得不求助于楼梯逼近。在许多散射问题中,这意味着获得精确解所需的网格分辨率远高于在均质材料中的传播所要求的分辨率。本文考虑零边界数据,首先是速度,然后是压力。这两种形式的边界条件分别模拟了完全刚性和压力释放的边界。在Tornberg和Engquist中,开发了一种简单有效的方法,可以始终如一地对二维弯曲刚性边界进行建模[J.计算物理227,6922-6943(2008)]。在这里,这种处理被概括为三个维度。基于这种方法,还介绍了一种建模压力释放表面的技术,该技术具有二阶精度,并且对时间步长没有附加限制。标准方法的结构得以保留,使其易于在现有求解器中使用。几个数值测试证明了其有效性。

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