Dynamic response of functionally graded auxetic graphene-origami-reinforced plates on viscoelastic foundations under blast loading
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DOI:
https://doi.org/10.47869/tcsj.77.5.9Abstract
The primary objective of this study is to employ the finite element method (FEM) to investigate the vibration and dynamic responses of functionally graded auxetic plates reinforced with graphene origami (GOri), hereafter referred to as FG-GOEAM plates, resting on a viscoelastic foundation (VEF) and subjected to thermal effects. The FG-GOEAM plate is modeled as a multilayered structure in which the GOri mass fraction varies continuously through the plate thickness. The governing equations of motion are derived using Hamilton’s principle, enabling a comprehensive description of the coupled thermo-mechanical behavior of the plate–foundation system. After validating the accuracy and convergence of the proposed numerical model, a series of parametric studies is conducted to examine the influences of the GOri mass fraction, GOri distribution patterns, temperature, boundary conditions, foundation stiffness, and the degree of graphene origami folding on the free vibration characteristics and the dynamic response of the plates subjected to blast loadingDownloads
References
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