Boundary-element parallel-computing algorithm for the microstructural analysis of general composites
A standard continuum-mechanics-based 3D boundary-element (BE) algorithm has been devised to the microstructural modeling of complex heterogeneous solids such as general composites. In the particular applications of this paper, the mechanical properties of carbon-nanotube–reinforced composites are es...
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| Vydáno v: | Computers & structures Ročník 88; číslo 11; s. 773 - 784 |
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| Médium: | Journal Article |
| Jazyk: | angličtina |
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Kidlington
Elsevier Ltd
01.06.2010
Elsevier |
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| ISSN: | 0045-7949, 1879-2243 |
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| Abstract | A standard continuum-mechanics-based 3D boundary-element (BE) algorithm has been devised to the microstructural modeling of complex heterogeneous solids such as general composites. In the particular applications of this paper, the mechanical properties of carbon-nanotube–reinforced composites are estimated from three-dimensional representative volume elements (RVEs). The shell-like thin-walled carbon nanotubes (CNTs) are also simulated with 3D BE models, and a generic subregion-by-subregion (SBS) algorithm makes the microstructural description of the CNT–polymer systems possible. In fact, based on this algorithm, a general scalable BE parallel code is proposed. Square and hexagonal fiber-packing patterns are considered to simulate the 3D composite microstructures. |
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| AbstractList | A standard continuum-mechanics-based 3D boundary-element (BE) algorithm has been devised to the microstructural modeling of complex heterogeneous solids such as general composites. In the particular applications of this paper, the mechanical properties of carbon-nanotube-reinforced composites are estimated from three-dimensional representative volume elements (RVEs). The shell-like thin-walled carbon nanotubes (CNTs) are also simulated with 3D BE models, and a generic subregion-by-subregion (SBS) algorithm makes the microstructural description of the CNT-polymer systems possible. In fact, based on this algorithm, a general scalable BE parallel code is proposed. Square and hexagonal fiber-packing patterns are considered to simulate the 3D composite microstructures. |
| Author | Araújo, F.C. Gray, L.J. d’Azevedo, E.F. |
| Author_xml | – sequence: 1 givenname: F.C. surname: Araújo fullname: Araújo, F.C. email: fcelio@pq.cnpq.br organization: Dept. Civil Eng., UFOP, 35400-000 Ouro Preto-MG, Brazil – sequence: 2 givenname: E.F. surname: d’Azevedo fullname: d’Azevedo, E.F. email: dazevedoef@ornl.gov organization: Computer Science and Math. Div., ORNL, Oak Ridge, P.O. Box 2008, USA – sequence: 3 givenname: L.J. surname: Gray fullname: Gray, L.J. email: graylj1@ornl.gov organization: Computer Science and Math. Div., ORNL, Oak Ridge, P.O. Box 2008, USA |
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| Keywords | Thin-walled elements CNT-based composites Parallel computing 3D standard BEM Subregion-by-subregion technique Representative volume element Parallel algorithm Thin shell Mechanical properties Carbon nanotubes Polymer Distributed computing Modeling Continuum Heterogeneous material Packing Signal processing Parallel computation Nanocomposite Microstructure Thin wall Boundary element method |
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| SubjectTerms | 3D standard BEM Algorithms Applied sciences Boundary element method CNT-based composites Composites Computer science; control theory; systems Computer simulation Computer systems and distributed systems. User interface Exact sciences and technology Forms of application and semi-finished materials Fundamental areas of phenomenology (including applications) Mathematical analysis Mathematical models Microstructure Parallel computing Physics Polymer industry, paints, wood Software Solid mechanics Structural and continuum mechanics Subregion-by-subregion technique Technology of polymers Thin-walled elements Three dimensional |
| Title | Boundary-element parallel-computing algorithm for the microstructural analysis of general composites |
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