Non-linear thermal stability and free vibration behavior of sandwich beams with auxetic re-entrant aluminum cores and graphene origami-enhanced facings

No Thumbnail Available

Date

2025

Journal Title

Journal ISSN

Volume Title

Publisher

Elsevier Ltd

Abstract

Revolutionizing advanced sandwich structures, this study delves into the non-linear thermal stability behavior and free vibration characteristics of auxetic aluminum re-entrant core sandwich beams enhanced with graphene origami (GOri) metamaterial facings, subjected to spatially varying thermal environment. The sandwich beams are modeled as layered structures incorporating complex geometric non-linearities, using a higher-order shear deformation framework and non-linear strain–displacement kinematics based on von Kármán assumptions. The governing equations of motion are addressed through the Ritz formulation, enabling an in-depth investigation of how variations in graphene origami layout, concentration, and fold geometry within the face sheets influence the structural performance. Additionally, the influence of various core Poisson's ratio configurations-negative (NPR), zero (ZPR), and positive (PPR)-along with the effects of core angle and thickness ratio, are systematically explored. The results highlight that core topology critically influences post-buckling resistance and non-linear vibrational characteristics. Furthermore, the integration of graphene origami significantly enhances stiffness and structural stability, demonstrating its potential for next-generation aerospace, automotive, and high-performance engineering applications. To the best of the authors’ knowledge, this is the first study to explore the coupled effects of auxetic re-entrant aluminum cores and graphene origami-enhanced facings on the non-linear thermal and dynamic behavior of sandwich beams. © 2025 Elsevier Ltd

Description

Keywords

Aluminum, Buckling, Buckling behavior, Facings, Metamaterials, Poisson ratio, Sandwich structures, Shear flow, Structural analysis, Thermodynamic stability, Vibration analysis, Auxetic metamaterial, Auxetics, Graphene origami, Graphenes, Linear vibration analysis, Negative Poisson ratio, Non-linear vibrations, Re-entrant auxetic core sandwich beam, Ritz methods, Sandwich beams, Thermal post-buckling, Thermal post-buckling and non-linear vibration analyze, Equations of motion

Citation

Composite Structures, 2025, 372, , pp. -

Collections

Endorsement

Review

Supplemented By

Referenced By