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Geometrically non‐linear thermoelastic analysis of functionally graded shells using finite element method
Authors:S. A. Hosseini Kordkheili  R. Naghdabadi
Affiliation:1. Department of Aerospace Engineering, Sharif University of Technology, Tehran, Iran;2. Ph.D. Candidate.;3. Associate Professor.Department of Mechanical Engineering, Sharif University of Technology, Tehran, P.O. Box 11365‐9567, Iran
Abstract:A finite element formulation governing the geometrically non‐linear thermoelastic behaviour of plates and shells made of functionally graded materials is derived in this paper using the updated Lagrangian approach. Derivation of the formulation is based on rewriting the Green–Lagrange strain as well as the 2nd Piola–Kirchhoff stress as two second‐order functions in terms of a through‐the‐thickness parameter. Material properties are assumed to vary through the thickness according to the commonly used power law distribution of the volume fraction of the constituents. Within a non‐linear finite element analysis framework, the main focus of the paper is the proposal of a formulation to account for non‐linear stress distribution in FG plates and shells, particularly, near the inner and outer surfaces for small and large values of the grading index parameter. The non‐linear heat transfer equation is also solved for thermal distribution through the thickness by the Rayleigh–Ritz method. Advantages of the proposed approach are assessed and comparisons with available solutions are presented. Copyright © 2007 John Wiley & Sons, Ltd.
Keywords:functionally graded materials  thermoelasticity  geometrically non‐linear  shell structure  finite element method
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