| Authors | مجتبی برزگری,محمد عارفی |
| Journal | Mechanics Research Communications |
| Page number | 104706 |
| Volume number | 155 |
| IF | 2.3 |
| Paper Type | Full Paper |
| Published At | 2026-08-01 |
| Journal Grade | Scientific - research |
| Journal Type | Electronic |
| Journal Country | Iran, Islamic Republic Of |
| Journal Index | JCR |
| Keywords | Graphene origami Volume fraction Folding degree Piezo Magnetic Bending |
|---|
Abstract
This work presents a comprehensive bending analysis of magneto-electro-elastic sandwich curved shells within
the framework of First-Order Shear Deformation Theory (FSDT). The structure consists of a novel three-layered
configuration featuring a graphene origami-enabled auxetic core, integrated between two functionally graded
piezoelectromagnetic face-sheets. The analysis specifically investigates the static response of the shell when
subjected to combined external stimuli: applied electric potentials, applied magnetic potentials, and a uniform
thermal environment. These multi-physical loads are incorporated as generalized external work terms within the
constitutive relations governing the magneto-electro-elastic material behavior. Utilizing FSDT, the kinematic
displacement field of the curved plate is derived, accounting for transverse shear deformations essential for
moderately thick shells. The governing equations of bending, along with the associated natural boundary con-
ditions, are systematically formulated by applying the principle of virtual work. For the numerical solution, the
study employs Navier’s analytical technique, which is applied to shells with simply-supported boundary con-
ditions along all edges. A detailed parametric study is conducted to elucidate the influence of key design and
loading variables on the structural response. The results provide significant insights into the coupled multi-field
bending behavior, demonstrating how the smart, graded composition and the tailored auxetic core can be
optimized to achieve desired deflection profiles and stress distributions under complex electro-magneto-thermal
loading.