Solving Broadband Vibroacoustic Problems with Fast Boundary Element-Finite Element Method Divided by Non-Matching Meshes[J]. 2018, 52(10): 167-0.
DOI:
Solving Broadband Vibroacoustic Problems with Fast Boundary Element-Finite Element Method Divided by Non-Matching Meshes[J]. 2018, 52(10): 167-0.DOI: 10.7652/xjtuxb201810023.
Solving Broadband Vibroacoustic Problems with Fast Boundary Element-Finite Element Method Divided by Non-Matching Meshes
Modeling vibroacoustic problems with coupled fast boundary element method and finite element method(BEM-FEM)can maximize the advantages of the various numerical methods
hence can get a vibroacoustic simulation system with excellent performance. The direct coupling scheme is used to establish the vibroacoustic equation
and the selected scheme is discussed in detail to achieve a fast solution for a large-scale coupling system. Then the common mismatch between the sound field meshes and the structural meshes on the coupling interface is considered
and the data-exchange matrices between higher-order non-matching meshes are constructed with weight residual method to realize the highly accurate data exchange. The implementation theory for fast directional algorithm(FDA)suitable for broadband issues is introduced
and the traditional BEM matrices in BEM-FEM matrix are compressed efficiently in entire band by FDA. The correctness and effectiveness of this method are validated by introducing analytical examples and a large-scale complex example over 400
000 degrees of BEM-FEM freedom. In particular
this method is of higher accuracy and suitable for a broader band
which is 3 to 4 times that of the existing similar methods.
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