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Modeling underwater noise propagation from marine hydrokinetic power devices through a time-domain, velocity-pressure solution

机译:通过时域,速度 - 压力解决从海洋水管动力装置的水下噪声传播建模

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摘要

Marine hydrokinetic (MHK) devices generate electricity from the motion of tidal and ocean currents, as well as ocean waves, to provide an additional source of renewable energy available to the United States. These devices are a source of anthropogenic noise in the marine ecosystem and must meet regulatory guidelines that mandate a maximum amount of noise that may be generated. In the absence of measured levels from in situ deployments, a model for predicting the propagation of sound from an array of MHK sources in a real environment is essential. A set of coupled, linearized velocity-pressure equations in the time-domain are derived and presented in this paper, which are an alternative solution to the Helmholtz and wave equation methods traditionally employed. Discretizing these equations on a three-dimensional (3D), finite-difference grid ultimately permits a finite number of complex sources and spatially varying sound speeds, bathymetry, and bed composition. The solution to this system of equations has been parallelized in an acoustic-wave propagation package developed at Sandia National Labs, called Paracousti. This work presents the broadband sound pressure levels from a single source in two-dimensional (2D) ideal and Pekeris wave-guides and in a 3D domain with a sloping boundary. The paper concludes with demonstration of Paracousti for an array of MHK sources in a simple wave-guide. (C) 2018 Acoustical Society of America.
机译:海洋流体动力学(MHK)装置生成从潮汐和洋流的运动电力,以及海浪,以提供可再生能源提供给美国的额外来源。这些器件是海洋生态系统中的人为噪声源,必须符合规范指南,该指南要求授权可能产生的最大噪声量。在没有测量水平的情况下,从原位部署中,用于预测来自真实环境中的MHK源阵列的声音传播的模型至关重要。在本文中推导和呈现在时域中的一组耦合线性化速度压力方程,其是传统上采用的亥姆霍兹和波浪方程方法的替代解决方案。在三维(3D)上使这些等式离散化,有限差异电网最终允许有限数量的复合源和空间变化的声速,沐浴醇和床组合物。该方程系统的解决方案已经在桑迪亚国家实验室开发的声波传播包中并行化,称为帕拉轮岛。这项工作从二维(2D)理想和PEKERIS波导的单个源和具有倾斜边界的3D域中介绍了宽带声压水平。本文在一个简单的波浪指南中展示了帕拉科斯蒂的遥控器的演示。 (c)2018年声学学会。

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  • 作者单位

    Montana State Univ Dept Mech &

    Ind Engn Bozeman MT 59718 USA;

    Montana State Univ Dept Mech &

    Ind Engn Bozeman MT 59718 USA;

    DNV GL Energy &

    Sustainabil 1501 4th Ave Suite 900 Seattle WA 98101 USA;

    Sandia Natl Labs 1515 Eubank Southeast Albuquerque NM 87123 USA;

    Sandia Natl Labs 1515 Eubank Southeast Albuquerque NM 87123 USA;

    Sandia Natl Labs 1515 Eubank Southeast Albuquerque NM 87123 USA;

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  • 正文语种 eng
  • 中图分类 声学;
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