Natural fibers are known for their biodegradable and abundant availability, which makes them a potential replacement for synthetic fibers. An attempt is made in this work to study the thermal buckling behavior of a jute-fiber-reinforced epoxy polymer matrix composite plate. A numerical model is developed to study the thermal buckling behavior of the composite using the commercial finite-element analysis software Ansys. The result obtained from the numerical model is validated using experimental analysis and with the theoretical values published in the literature. The developed numerical model is suited very well for isotropic and composite materials. The influence of the number of plies, orientation and boundary conditions on the thermal buckling behavior of the composite is also studied using parametric analysis. The effects of boundary conditions such as ‘clamped’ and ‘simply supported’ on cross-ply symmetric, antisymmetric, balanced and quasi-isotropic laminates are investigated.
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22 December 2020
Research Article|
November 16 2020
Investigation on thermal buckling analysis of jute/epoxy polymer matrix composites
Guru Anandan, BE;
Guru Anandan, BE
Research Scholar
School of Mechanical Engineering, Vellore Institute of Technology, Vellore, India
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Venkatachalam Gopalan, PhD;
School of Mechanical Engineering, Vellore Institute of Technology, Chennai, India
(corresponding author: g.venkatachalam@vit.ac.in)
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Vasudevan Rajamohan, PhD
Vasudevan Rajamohan, PhD
Professor
School of Mechanical Engineering, Vellore Institute of Technology, Vellore, India
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(corresponding author: g.venkatachalam@vit.ac.in)
Publisher: Emerald Publishing
Received:
November 14 2019
Accepted:
October 22 2020
Online ISSN: 2046-0155
Print ISSN: 2046-0147
ICE Publishing: All rights reserved
2020
Emerging Materials Research (2020) 9 (4): 1229–1236.
Article history
Received:
November 14 2019
Accepted:
October 22 2020
Citation
Anandan G, Gopalan V, Rajamohan V (2020), "Investigation on thermal buckling analysis of jute/epoxy polymer matrix composites". Emerging Materials Research, Vol. 9 No. 4 pp. 1229–1236, doi: https://doi.org/10.1680/jemmr.19.00169
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