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(Referência obtida automaticamente do Web of Science, por meio da informação sobre o financiamento pela FAPESP e o número do processo correspondente, incluída na publicação pelos autores.)

Analysis of three-dimensional hexagonal and cubic polycrystals using the boundary element method

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Autor(es):
Galvis, Andres F. [1] ; Rodriguez, Rene Q. [1, 2] ; Sollero, Paulo [1]
Número total de Autores: 3
Afiliação do(s) autor(es):
[1] Univ Estadual Campinas, Sch Mech Engn, Dept Computat Mech, BR-13083860 Campinas, SP - Brazil
[2] Univ Estado Mato Grosso, Sch Civil Engn, Campus Tangara da Serra, BR-78300000 Tangara Da Serra, MT - Brazil
Número total de Afiliações: 2
Tipo de documento: Artigo Científico
Fonte: MECHANICS OF MATERIALS; v. 117, p. 58-72, FEB 2018.
Citações Web of Science: 3
Resumo

This work presents the analysis of three-dimensional polycrystals in the microscale with different lattice structures, hexagonal closed package (HCP) and face centered cubic (FCC). In these materials, the grained medium is considered as a continuum elastic body. An artificial polycrystalline structure is modeled using the Voronoi tessellation to generate random morphological microstructures. To reproduce the stochastic effects, arbitrary crystalline orientations are distributed over the structure. The boundary element method (BEM) is used to obtain the static displacement and traction fields, with a fundamental solution for 3D general anisotropic materials based on double Fourier's series. The macroscopic effective elastic properties are evaluated using the average homogenization technique and compared to the reference values through convergence statistical analysis. Explicit schemes are presented in order to improve the computational load and decrease the time required by the main BEM application implemented on distributed memory architectures. Numerical examples are presented showing the convergence of the results and comparisons of anisotropy level between these FCC and HCP materials using a recently proposed anisotropy factor. (AU)

Processo FAPESP: 15/22199-9 - Análise de falha 3D multi-escala dinámica termo-elástica de compósitos usando o método acelerado dos elementos de contorno
Beneficiário:Rene Quispe Rodriguez
Modalidade de apoio: Bolsas no Brasil - Pós-Doutorado