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Simulation of acoustic wave propagation in dispersive media with relaxation losses by using FDTD method with PML absorbing boundary condition

机译:FDTD法在PML吸收边界条件下模拟声波在具有松弛损耗的色散介质中的传播

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摘要

We present a method to incorporate the relaxation dominated attenuation into the finite-difference time-domain (FDTD) simulation of acoustic wave propagation in complex media. A dispersive perfectly matched layer (DPML) boundary condition, which is suitable for boundary matching to such a dispersive media whole space, is also proposed to truncate the FDTD simulation domain. The numerical simulation of a Ricker wavelet propagating in a dispersive medium, described by second-order Debye model, shows that the Ricker wavelet is attenuated in amplitude and expanded in time in its course of propagation, as required by Kramers-Kronig relations. The numerical results also are compared to exact solution showing that the dispersive FDTD method is accurate and that the DPML boundary condition effectively dampens reflective waves. The method presented here is applicable to the simulation of ultrasonic instrumentation for medical imaging and other nondestructive testing problems with frequency dependent, attenuating media.
机译:我们提出了一种方法,将松弛控制的衰减合并到声波在复杂介质中的有限差分时域(FDTD)模拟中。还提出了一种适合于此类色散介质整个空间边界匹配的色散完全匹配层(DPML)边界条件,以截断FDTD仿真域。由二阶Debye模型描述的在离散介质中传播的Ricker小波的数值模拟表明,按照Kramers-Kronig关系的要求,Ricker小波在其传播过程中振幅衰减并随时间扩展。还将数值结果与精确解进行比较,结果表明色散FDTD方法是准确的,并且DPML边界条件有效地抑制了反射波。此处介绍的方法适用于模拟超声仪器,用于医学成像以及其他与频率相关的衰减介质的无损检测问题。

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