Steel and Composite Structures
Volume 51, Number 2, 2024, pages 185-202
DOI: 10.12989/scs.2024.51.2.185
Investigating wave propagation in sigmoid-FGM imperfect plates with accurate Quasi-3D HSDTs
Mokhtar Nebab, Hassen Ait Atmane and Riadh Bennai
Abstract
In this research paper, and for the first time, wave propagations in sigmoidal imperfect functionally graded material
plates are investigated using a simplified quasi-three-dimensionally higher shear deformation theory (Quasi-3D HSDTs). By
employing an indeterminate integral for the transverse displacement in the shear components, the number of unknowns and
governing equations in the current theory is reduced, thereby simplifying its application. Consequently, the present theories
exhibit five fewer unknown variables compared to other Quasi-3D theories documented in the literature, eliminating the need for
any correction coefficients as seen in the first shear deformation theory. The material properties of the functionally graded plates
smoothly vary across the cross-section according to a sigmoid power law. The plates are considered imperfect, indicating a pore
distribution throughout their thickness. The distribution of porosities is categorized into two types: even or uneven, with linear
(L)-Type, exponential (E)-Type, logarithmic (Log)-Type, and Sinus (S)-Type distributions. The current quasi-3D shear
deformation theories are applied to formulate governing equations for determining wave frequencies, and phase velocities are
derived using Hamilton's principle. Dispersion relations are assumed as an analytical solution, and they are applied to obtain
wave frequencies and phase velocities. A comprehensive parametric study is conducted to elucidate the influences of
wavenumber, volume fraction, thickness ratio, and types of porosity distributions on wave propagation and phase velocities of
the S-FGM plate. The findings of this investigation hold potential utility for studying and designing techniques for ultrasonic
inspection and structural health monitoring.
Key Words
even and uneven porosity; guided wave; phase velocity; Qausi-3D HSDTs; S-FGM
Address
Mokhtar Nebab:1)Department of Civil Engineering, Faculty of Technology, University of M