An accurate model for free vibration of porous magneto-electro-thermo-elastic functionally graded cylindrical shells subjected to multi-field coupled loadings

Author:

Ni Yiwen12,Zhu Shengbo2,Sun Jiabin3,Tong Zhenzhen24,Zhou Zhenhuan2ORCID,Xu Xinsheng2,Lim Chee Wah5

Affiliation:

1. MOE Key Laboratory of Impact and Safety Engineering, Ningbo University, Ningbo, P.R. China

2. State Key Laboratory of Structure Analysis of Industrial Equipment and Department of Engineering Mechanics, Dalian University of Technology, International Center for Computational Mechanics, Dalian, P.R. China

3. State Key Laboratory of Structural Analysis of Industrial Equipment and School of Ocean Science and Technology, Dalian University of Technology, Panjin, Liaoning, P.R. China

4. College of Locomotive and Rolling Stock Engineering, Dalian Jiaotong University, Dalian, P.R. China

5. Department of Architecture and Civil Engineering, City University of Hong Kong, Hong Kong SAR, P.R. China

Abstract

An accurate model for vibration of a porous magneto-electro-thermo-elastic functionally graded (METE-FG) cylindrical shell made of barium titanate (BaTiO3) and cobalt diiron tetraoxide (CoFe2O4) with magneto-electro-thermal loadings is proposed within the framework of Hamiltonian system. Four types of porosity distribution profiles in the thickness direction are considered. By introducing a new total eigenvector, the higher-order governing differential equations are transformed into a set of lower-order equations. The exact solution for free vibration of METE-FG shells can be expanded in terms of specific symplectic eigenfunctions having seven possible explicit forms. Subsequently, analytical frequency equations and vibration mode shapes for METE-FG shells with various boundary conditions are derived simultaneously. A comparison study is presented to demonstrate the accuracy of the proposed model and very good agreement is observed. The effects of material properties and magneto-electro-thermal loadings on free vibration characteristics of METE-FG cylindrical shells are analyzed and discussed in detail.

Funder

National Natural Science Foundation of China

Research Grants Council of the Hong Kong Special Administrative Region

dalian science and technology innovation fund

Key Program of Natural Science Foundation of Liaoning Province of China

dalian high-level talent innovation program

fundamental research funds for the central universities

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

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