首页> 外文会议>2016 IEEE/OES China Ocean Acoustics >Computation of acoustic acattering from objects in Shallow waters by conventional and fast multipole BEM
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Computation of acoustic acattering from objects in Shallow waters by conventional and fast multipole BEM

机译:用常规和快速多极BEM计算浅水中物体的声场

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The Shallow-water environment has significant influences on the acoustic scattering from objects, but the characteristics are quite different from those of free-space problems. A high-performance numerical model of conventional and fast multipole BEM based on Burton-Miller formulation for acoustic scattering from objects in shallow-water waveguides is established for the first time. The numerical model is also combined with the well-developed sound propagation theory for ocean acoustics; the mirror image method is adopted for the near-field problem; and, the normal mode method (i.e. the famous open-source code kraken) is chosen for the far-field problem. The time and space complexities of conventional and fast multipole BEM are compared and analyzed by the computation of different-scale problems. The algorithms are validated by comparison with the scattering results of a rigid sphere situated in a shallow-water waveguide, computed by each method. The horizontal directivity and the frequency responses of scattering from different objects in shallow-water waveguides are computed, and the shallow-water target echoes are obtained by inverse FFT. The results show that, the complexity of conventional BEM is at least O(N2), and the fast multipole BEM is O(N log N). Combined with these two methods, various-scale problems can be computed efficiently. The multipath effects of shallow-water waveguides bring in obvious interferences in the space domain; a `comb filter' effect in the frequency domain; and, also large extension of the target echoes in the time domain. Such characteristics are rather like that of sound propagation problems in the ocean waveguide. Further, it can be found that, at least for simple objects, the frequency characteristics of the scattering are controlled by the shallow-water waveguide, and different objects only take on modulation effects on the amplitude of the frequency response, which are completely different from those of free-space problems.
机译:浅水环境对物体的声散射有显着影响,但其特性与自由空间问题完全不同。首次建立了基于Burton-Miller公式的常规快速多极BEM的高性能数值模型,用于从浅水波导中的物体进行声散射。数值模型还与完善的海洋声传播理论相结合。近场问题采用镜像法。然后,针对远场问题选择普通模式方法(即著名的开源代码kraken)。通过计算不同尺度的问题,比较和分析了常规和快速多极BEM的时空复杂性。通过与每种方法计算的位于浅水波导中的刚性球体的散射结果进行比较,验证了算法的有效性。计算了浅水波导中不同目标散射的水平方向性和频率响应,并通过逆FFT获得了浅水目标回波。结果表明,常规BEM的复杂度至少为O(N2),而快速多极BEM的复杂度为O(N log N)。结合这两种方法,可以有效地计算各种规模的问题。浅水波导的多径效应在空间域产生了明显的干扰。频域中的“梳状滤波器”效应;而且,目标回波在时域中也有很大的扩展。这些特性与海洋波导中的声音传播问题非常相似。此外,可以发现,至少对于简单的物体,散射的频率特性是由浅水波导控制的,并且不同的物体仅对频率响应的幅度产生调制效果,这与完全不同。自由空间问题。

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