New treatment of the self-weight and the inertial effects of rotation for the BEM formulation of 2D anisotropic solids
As an evident drawback for using the conventional boundary element method (BEM), an extra domain integral is present in the boundary integral equation when body-force effects are involved. For 2D anisotropic elastostatics, the extra domain integral has been exactly transformed to the boundary; howev...
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Veröffentlicht in: | Engineering analysis with boundary elements 2016-12, Vol.73, p.170-180 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | As an evident drawback for using the conventional boundary element method (BEM), an extra domain integral is present in the boundary integral equation when body-force effects are involved. For 2D anisotropic elastostatics, the extra domain integral has been exactly transformed to the boundary; however, an additional line integral intersecting the domain is involved for general cases to make the transformation. For a multiply connected region, this process is quite involving and computation-wise inefficient indeed, especially when its geometry is very complicated. In this article, a new approach is proposed to make the transformation, yet without involving extra line integrals. By this approach, the BEM's notion as a boundary solution technique is completely restored. In the end, a few benchmark problems are studied to demonstrate the veracity of formulations as well as our successful implementation in an existing BEM code. |
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ISSN: | 0955-7997 1873-197X |
DOI: | 10.1016/j.enganabound.2016.10.001 |