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3D isogeometric boundary element analysis and structural shape optimization for Helmholtz acoustic scattering problems

机译:亥姆霍兹声学散射问题的3D Isogeometric边界元分析与结构形状优化

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The capability of boundary element methods (BEM) for solving three-dimensional time harmonic Helmholtz acoustic scattering problems is presented in the framework of the isogeometric analysis (IGA). Both the CAD geometry and the physical boundary variables are approximated using Non-uniform Rational B-splines basis functions (NURBS) in an isogeometric setting. A detailed comparison between two BEM methods: the conventional boundary integral equation (CBIE) and Burton-Miller (BM) is provided including the computational cost. The proposed models are enhanced with a modified collocation scheme with offsets to Greville abscissae to avoid placing collocation points at the corners. Placing collocation points on a smooth surface enables accurate evaluation of normals for BM formulation in addition to straightforward prediction of jump-terms and avoids singularities in O(1/r) integrals eliminating the need for polar integration. Furthermore, no additional special treatment is required for the hyper-singular integral while collocating on highly distorted elements, such as those containing sphere poles.Acoustic shape optimization in different mediums (air and water) is performed with Particle Swarm Optimization (PSO) and the results are compared with the benchmark solutions from the literature. The reference solutions are obtained with BM which deals with higher order singularities and gradient-based optimization, and requires more complicated sensitivity analysis. The obtained results indicate that, CBIE with PSO is a feasible alternative (except for a small number of fictitious frequencies) which is easier to implement. (C) 2021 Elsevier B.V. All rights reserved.
机译:求解三维时间谐波Helmholtz声学散射问题的边界元方法(BEM)的能力在异诊测术分析(IgA)的框架中提出。 CAD几何和物理边界变量都使用异构设置中的非均匀RATIONAT B样条基函数(NURBS)来近似。两个BEM方法之间的详细比较:提供了传统的边界积分方程(CBIE)和Burton-Miller(BM),包括计算成本。所提出的模型通过修改的搭配方案来增强,其具有偏移到Greville Abscissae,以避免在角落处放置搭配点。除了直接预测的跳跃术语外,可以精确地评估BM配方的正常评估,并避免O(1 / R)积分的奇点,消除了极性集成的需要。此外,在高度扭曲的元件上均匀的同时,不需要额外的特殊处理,例如在高度扭曲的元件上,例如包含球杆的那些。用粒子群优化(PSO)和不同介质(空气和水)中的声学形状优化。结果与文献中的基准解决方案进行了比较。用BM获得参考解决方案,该BM涉及高阶奇点和基于梯度的优化,并且需要更复杂的敏感性分析。所获得的结果表明,具有PSO的CBIE是可行的替代方案(除了少量虚拟频率之外),这更容易实现。 (c)2021 elestvier b.v.保留所有权利。

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