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Linear finite element formulation for free vibration and buckling analyses of multi-directional FGP doubly curved shallow shells in thermal environment

Pham, Q.-H. and Tran, V.K. and Nguyen, P.-C. (2024) Linear finite element formulation for free vibration and buckling analyses of multi-directional FGP doubly curved shallow shells in thermal environment. Ships and Offshore Structures. ISSN 17445302

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Abstract

This paper presents the free vibration and buckling analyses of multi-directional functionally graded porous doubly curved shallow shells resting on Pasternak elastic foundations in a thermal environment. For the first time, a linear finite element formulation using the refined high-order shear deformation theory, combined with the Hermitian function, is developed to compute the vibration and buckling behaviour of doubly curved shallow shells. Mechanical properties of MFGP material change according to the length, width and thickness directions and the porosity distribution including even and uneven. The doubly curved shallow shell is operated in uniform, linear and non-linear temperature environments. The convergence and accuracy of the proposed method are verified by comparing numerical results with published works. In addition, a comprehensive numerical investigation was carried out to evaluate the influence of parameters on the natural frequency and critical buckling behaviour of MFGP doubly curved shallow shells. © 2024 Informa UK Limited, trading as Taylor & Francis Group.

Item Type: Article
Divisions: Offices > Office of International Cooperation
Identification Number: 10.1080/17445302.2024.2335440
Uncontrolled Keywords: Buckling; Convergence of numerical methods; Plates (structural components); Porous materials; Shear deformation; Shells (structures); Vibration analysis, Doubly curved shells; Free vibration; Free vibration and buckling; High-order shear deformation theory; Higher order shear deformation theory; Multi-directional functionally graded; Multi-directional functionally graded porous material; Refined high-order shear deformation theory; Shallow doubly curved shell; Thermal environment, Finite element method
URI: http://eprints.lqdtu.edu.vn/id/eprint/11204

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