On propagation of axisymmetric waves in pressurized functionally graded elastomeric hollow cylinders
Bin Wu, Yipin Su, Dongying Liu, Weiqiu Chen, Chuanzeng Zhang

TL;DR
This study analyzes how axisymmetric guided waves propagate in pressurized, functionally graded elastomeric hollow cylinders, considering complex deformation and material variations, and derives analytical dispersion relations validated numerically.
Contribution
It introduces an efficient combined state-space and multi-layer approach to derive analytical dispersion relations for guided waves in pressurized FG elastomeric cylinders with validated accuracy.
Findings
Wave frequency depends nonlinearly on pressure and material gradient.
Material gradient enhances pressure's ability to control wave behavior.
Numerical validation confirms the approach's accuracy and convergence.
Abstract
Soft materials can be designed with a functionally graded (FG) property for specific applications. In this paper, we analyze the axisymmetric guided wave propagation in a pressurized FG elastomeric hollow cylinder. The cylinder is subjected to a combined action of axial pre-stretch and pressure difference applied to the inner and outer cylindrical surfaces. We consider both torsional waves and longitudinal waves propagating in the FG cylinder made of incompressible isotropic elastomer, which is characterized by the Mooney-Rivlin strain energy function but with the material parameters varying with the radial coordinate in an affine way. The pressure difference generates an inhomogeneous deformation field in the FG cylinder, which dramatically complicates the superimposed wave problem described by the small-on-large theory. A particularly efficient approach is hence employed which…
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Taxonomy
TopicsComposite Structure Analysis and Optimization · Dielectric materials and actuators · Structural Analysis and Optimization
