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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.)

Viscoelastic characteristics of carbon fiber-reinforced epoxy filament wound laminates

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Autor(es):
Ornaghi Jr, Heitor L. ; Neves, Roberta M. [1] ; Monticeli, Francisco M. [2] ; Almeida, Jr., Jose Humberto S. [3]
Número total de Autores: 4
Afiliação do(s) autor(es):
[1] Univ Fed Rio Grande do Sul, PPGE3M, Porto Alegre, RS - Brazil
[2] Sao Paulo State Univ, Dept Mat & Technol, Guaratingueta, SP - Brazil
[3] Aalto Univ, Dept Mech Engn, Espoo - Finland
Número total de Afiliações: 3
Tipo de documento: Artigo Científico
Fonte: COMPOSITES COMMUNICATIONS; v. 21, OCT 2020.
Citações Web of Science: 3
Resumo

The mechanical properties of fiber-reinforced composites are time-dependent due to the viscoelastic nature of polymers. This study covers the creep/recovery and dynamic mechanical properties of high-performance composites under low-stress loading. Flat unidirectional 6-layer laminates are manufactured by dry-filament winding and cured under hot compression. Four different laminates are studied: {[}0](6), {[}30](6), {[}60](6), and {[}90](6). Dynamic mechanical curves and creep behavior are highly dependent on the ply angle up to 60 degrees. The fiber orientation does not influence significantly the glass transition temperature, except for the {[}0](6) laminate, which has a higher T-g compared to the other samples. Normalized dynamic mechanical curves are plotted aiming to study the behavior of the material passing through the glass transition temperature (T-g). The modulus decreases for fiber angles toward the transverse direction, but the energy dissipation occurs in a broader temperature range. Creep/recovery also demonstrates a dependency on the fiber orientation, in which the sample {[}0](6) (highest storage modulus) has the lowest strain, leading to higher molecular hindrance compared to the other laminates. (AU)

Processo FAPESP: 17/10606-4 - Fadiga em compósitos híbridos processados via RTM: influência da interface híbrida na delaminação nos modos I e II
Beneficiário:Francisco Maciel Monticeli
Modalidade de apoio: Bolsas no Brasil - Doutorado