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Coupled Fluid-Structure Interactions Using the Fast Multipole Method

机译:使用快速多极方法耦合流体结构相互作用

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The interaction of sound with an arbitrarily shaped underwater object"must in general be treated as a coupled interaction between the fluid and structure, due to the acoustic impedance properties of water. Typically, this type of problem is solved by building a numerical model of the exterior fluid and interior solid regions and then simultaneously solving the coupled system of equations, on the common fluid-structure interface. These models are restricted by their high cost in terms of computational time and memory. The fast multipole method (FMM) significantly reduces these requirements and is applicable to many types of boundary integral equations. For simple structures, a coupled model using the FMM for both the fluid and structure will provide a substantial increase in the possible model size or frequency limit compared to traditional methods. This paper discusses such a model and presents initial non-coupled results in the form of acoustic scattering and target strength results for the rigid BeTSSi submarine model.
机译:由于水的声阻抗特性,声音与任意形状的水下物体的相互作用“一般被视为流体和结构之间的耦合相互作用。通常,通过建立一个数字模型来解决这种问题的问题外部流体和内部固体区域,然后同时求解公共流体结构界面上的等式耦合系统。这些模型在计算时间和内存方面受到高成本的限制。快速的多极方法(FMM)显着减少了这些要求并适用于许多类型的边界积分方程。对于简单的结构,与传统方法相比,使用FMM的耦合模型将提供可能的型号或频率限制的显着增加。本文讨论了此论文模型并以声学散射的形式提出初始非耦合结果和目标强度结果F.或刚性Betssi潜艇模型。

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