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首页> 外文期刊>Journal of Engineering Mechanics >Combining Plane Wave Expansion and Variational Techniques for Fast Phononic Computations
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Combining Plane Wave Expansion and Variational Techniques for Fast Phononic Computations

机译:结合平面波扩展和变分技术,用于快速旋转声滤量

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In this paper, the salient features of the plane wave expansion (PWE) method and the mixed variational technique are combined for the fast eigenvalue computations of arbitrarily complex phononic unit cells. This is done by expanding the material properties in a Fourier expansion, as is the case with PWE. The required matrix elements in the variational scheme are identified as the discrete Fourier transform coefficients of material properties, thus obviating the need for any explicit integration. The process provides succinct, closed-form expressions for all the matrices involved in the mixed variational method. The scheme proposed preserves both the simplicity of expression that is inherent in the PWE method and the superior convergence properties of the mixed variational scheme. This paper presents numerical results and comments upon the convergence and stability of the current method. The current representation renders the results of the method stable over the entire range of the expansion terms as allowed by the spatial discretization. When compared with a zero-order numerical integration scheme, the present method results in greater computational accuracy of all eigenvalues. A higher-order numerical integration scheme comes close to the accuracy of the present method but only with significantly more computational expense. (C) 2017 American Society of Civil Engineers.
机译:在本文中,平面波扩展(PWE)方法的突出特征和混合变分技术组合用于任意复杂的声孔单元电池的快速特征值计算。这是通过在傅里叶扩展中扩展材料特性来完成的,就像PWE一样。变化方案中所需的矩阵元素被识别为材料属性的离散傅里叶变换系数,从而避免了对任何显式积分的需求。该过程提供了用于混合变分方法所涉及的所有矩阵的简洁闭合表达式。该方案提出保留了PWE方法中固有的简单性和混合变分方案的优异收敛性能。本文呈现了对电流方法的收敛性和稳定性的数值结果和评论。当前表示使该方法的结果稳定在空间离散化允许的整个扩展项的整个范围内稳定。与零阶数值积分方案相比,本方法导致所有特征值的更大的计算精度。高阶数值积分方案接近本方法的准确性,但仅具有更高的计算费用。 (c)2017美国土木工程师协会。

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