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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >A Generalized Split-Step Angular Spectrum Method for Efficient Simulation of Wave Propagation in Heterogeneous Media
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A Generalized Split-Step Angular Spectrum Method for Efficient Simulation of Wave Propagation in Heterogeneous Media

机译:异构介质中波传播有效仿真的广义分流分角频谱方法

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摘要

Angular spectrum (AS) methods enable efficient calculation of wave propagation from one plane to another inside homogeneous media. For wave propagation in heterogeneous media such as biological tissues, AS methods cannot be applied directly. Split-stepping techniques decompose the heterogeneous domain into homogeneous and perturbation parts, and provide a solution for forward wave propagation by propagating the incident wave in both frequency-space and frequency-wavenumber domains. Recently, a split-step hybrid angular spectrum (HAS) method was proposed for plane wave propagation of focused ultrasound beams. In this study, we extend these methods to enable simulation of acoustic pressure field for an arbitrary source distribution, by decomposing the source and reflection spectra into orthogonal propagation direction components, propagating each component separately, and summing all components to get the total field. We show that our method can efficiently simulate the pressure field of arbitrary sources in heterogeneous media. The accuracy of the method was analyzed comparing the resultant pressure field with pseudospectral time domain (PSTD) solution for breast tomography and hemispherical transcranial-focused ultrasound simulation models. Eighty times acceleration was achieved for a 3-D breast simulation model compared to PSTD solution with 0.005 normalized root mean-squared difference (NRMSD) between two solutions. For the hemispherical phased array, aberrations due to skull were accurately calculated in a single simulation run as evidenced by the resultant-focused ultrasound beam simulations, which had 0.001 NRMSD with 40 times acceleration factor compared to the PSTD method.
机译:角谱(AS)方法能够有效地计算从一个平面到另一个在均匀介质内的波传播。对于异质介质中的波长,例如生物组织,因为不能直接施加方法。分割步进技术将异构域分解成均匀和扰动部件,并通过在频率空间和频率 - 波数域中传播入射波来提供用于正向波传播的解决方案。最近,提出了一种分离步骤混合角谱(具有)用于聚焦超声波束的平面波传播的方法。在本研究中,通过将源和反射光谱分解成正交传播方向分量,分别传播每个组件,扩展这些方法以实现用于任意源分布的声压场的模拟,并分别传播每个组件,并求解所有组件以获得总场。我们表明我们的方法可以有效地模拟异构介质中任意源的压力领域。分析了该方法的准确性,将所得压力场与假谱时时域(PSTD)解决方案进行比较,用于乳房断层扫描和半球经过颅骨的超声模拟模型。与两个解决方案之间的0.005标准化的根平均分平均差(NRMSD)相比,为3-D乳房仿真模型实现了八十次加速。对于半球相控阵,在由所得的聚焦超声波仿真中证明的单个仿真运行中精确地计算了由于颅骨的像差,其与PSTD方法相比具有0.001 NRMSD的0.001 NRMSD。

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