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Effect of thermal shock cycling on the quasi‐static and dynamic flexural properties of flax fabric‐epoxy matrix laminates
Author(s) -
Kollia Alexandra,
Kontaxis Lykourgos Chrysostomos,
Papanicolaou George Christopher,
Zaoutsos Stefanos P.
Publication year - 2020
Publication title -
journal of applied polymer science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.575
H-Index - 166
eISSN - 1097-4628
pISSN - 0021-8995
DOI - 10.1002/app.48529
Subject(s) - materials science , composite material , epoxy , thermal shock , flexural strength , dynamic mechanical analysis , glass fiber , flexural modulus , temperature cycling , fiber , shock (circulatory) , bending , modulus , thermal , polymer , medicine , physics , meteorology
The aim of the present work is to investigate the influence of thermal shock cycling on the quasi‐static and dynamic flexural properties of epoxy matrix composites reinforced with natural flax fibers fabric. Polymer composite laminates reinforced with four plies of natural flax fiber fabric have been manufactured. The samples have been exposed to different number of thermal shock cycles (0, 50, 100, 200, 300, 400), at a temperature range from −40 °C to +28 °C. Dynamic mechanical analysis (DMA) tests were performed on both pristine and thermally shocked specimens in order to determine their viscoelastic response. Due to the thermal shock cycling and after 100 thermal shock cycles, a maximum decrease in storage and loss modulus on the order of 50% was observed. After 100 thermal shock cycles, no further degradation of dynamic properties was observed. On the contrary, damping factor and glass transition temperature values showed a minor variation as number of thermal shock cycles increased. In addition, the time–temperature superposition principle (TTSP) was successfully applied, confirming the fact that the flax fiber fabric‐epoxy laminate is a thermo‐rheologically simple material. Likewise, quasi‐static three‐point bending tests were executed and a maximum decrease of 20% in flexural strength was observed after 400 thermal shock cycles. © 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2020 , 137 , 48529.

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