Advances in Aircraft and Spacecraft Science

Volume 11, Number 2, 2024, pages 129-152

DOI: 10.12989/aas.2024.11.2.129

Nonlinear bending analysis of bidirectional graded porous plates with elastic foundations relative to neutral surface

Amr E. Assie

Abstract

The applicability of a novel incremental-iterative technique with 2D differential/integral quadrature method (DIQM) in analyzing the nonlinear behavior of Bi-directional functionally graded (BDFG) porous plate based on neutral surface is verified in the present works. A formulation of four variables high shear deformation theory is used to describe the kinematic relations with respect to neutral surface rather than mid-plane. Bi-directional material distributions are presented by power functions through both thickness and axial directions. Porosities and voids are distributed by different cosine functions. The large deformations are included within the sense of nonlinear von Kármán strains. The integro-differential equilibrium equations with associated modified boundary conditions are solved numerically and iteratively by using 2D DIQM. Model validations and parametric analysis are depicted to present the influence of neutral axis, nonlinear strains, gradation indices, elastic foundations, and modified boundary conditions on the static deflection in addition to normal and shear stresses. The proposed model is effective in analyzing the static behavior of many real applications in nuclear reactors, marine and aerospace structures with large deformations.

Key Words

2D differential integral quadrature method; incremental iterative technique; neutral surface; nonlinear coupled partial differential equations; nonlinear static analysis; Porous BDFG plate

Address

Amr E. Assie: Department of Mechanical Engineering, Faculty of Engineering, Jazan University, Jazan, Saudi Arabia; Department of Mechanical Design and Production, Faculty of Engineering, Zagazig University, Zagazig, Egypt