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September 10, 2025Journal of Composites Science4 citationsOpen Access

An Exact 3D Shell Model for Free Vibration Analysis of Magneto-Electro-Elastic Composite Structures

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SBSalvatore BrischettoDCDomenico CesareTMTommaso Mondino

Key Points

  • The model predicts free vibration behavior in multilayered smart shells, with applications in complex engineering designs.
  • New benchmarks reveal specific circular frequencies and thickness ratios, aiding in understanding structural responses.
  • A layerwise approach ensures interlaminar continuity for various physical fields, enhancing model accuracy.
  • Preliminary cases validate the model across diverse curvatures, materials, and vibration modes, offering a robust reference framework.

Abstract

The present paper proposes a three-dimensional (3D) spherical shell model for the magneto-electro-elastic (MEE) free vibration analysis of simply supported multilayered smart shells. A mixed curvilinear orthogonal reference system is used to write the unified 3D governing equations for cylinders, cylindrical panels and spherical shells. The closed-form solution of the problem is performed considering Navier harmonic forms in the in-plane directions and the exponential matrix method in the thickness direction. A layerwise approach is possible, considering the interlaminar continuity conditions for displacements, electric and magnetic potentials, transverse shear/normal stresses, transverse normal magnetic induction and transverse normal electric displacement. Some preliminary cases are proposed to validate the present 3D MEE free vibration model for several curvatures, materials, thickness values and vibration modes. Then, new benchmarks are proposed in order to discuss possible effects in multilayered MEE curved smart structures. In the new benchmarks, first, three circular frequencies for several half-wave number couples and for different thickness ratios are proposed. Thickness vibration modes are shown in terms of displacements, stresses, electric displacement and magnetic induction along the thickness direction. These new benchmarks are useful to understand the free vibration behavior of MEE curved smart structures, and they can be used as reference for researchers interested in the development of of 2D/3D MEE models.

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Cite This Study

Brischetto et al. (2025) studied this question.

synapsesocial.com/papers/68c1afd354b1d3bfb60e8238https://doi.org/10.3390/jcs9080399
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