JOURNAL ARTICLE

Optimal design of tunable phononic bandgap plates under equibiaxial stretch

Saeid HedayatrasaKazem AbharyMohammad UddinJames K. Guest

Year: 2016 Journal:   Smart Materials and Structures Vol: 25 (5)Pages: 055025-055025   Publisher: IOP Publishing

Abstract

Design and application of phononic crystal (PhCr) acoustic metamaterials has been a topic with tremendous growth of interest in the last decade due to their promising capabilities to manipulate acoustic and elastodynamic waves. Phononic controllability of waves through a particular PhCr is limited only to the spectrums located within its fixed bandgap frequency. Hence the ability to tune a PhCr is desired to add functionality over its variable bandgap frequency or for switchability. Deformation induced bandgap tunability of elastomeric PhCr solids and plates with prescribed topology have been studied by other researchers. Principally the internal stress state and distorted geometry of a deformed phononic crystal plate (PhP) changes its effective stiffness and leads to deformation induced tunability of resultant modal band structure. Thus the microstructural topology of a PhP can be altered so that specific tunability features are met through prescribed deformation. In the present study novel tunable PhPs of this kind with optimized bandgap efficiency-tunability of guided waves are computationally explored and evaluated. Low loss transmission of guided waves throughout thin walled structures makes them ideal for fabrication of low loss ultrasound devices and structural health monitoring purposes. Various tunability targets are defined to enhance or degrade complete bandgaps of plate waves through macroscopic tensile deformation. Elastomeric hyperelastic material is considered which enables recoverable micromechanical deformation under tuning finite stretch. Phononic tunability through stable deformation of phononic lattice is specifically required and so any topology showing buckling instability under assumed deformation is disregarded. Nondominated sorting genetic algorithm (GA) NSGA-II is adopted for evolutionary multiobjective topology optimization of hypothesized tunable PhP with square symmetric unit-cell and relevant topologies are analyzed through finite element method. Following earlier studies by the authors, specialized GA algorithm, topology mapping, assessment and analysis techniques are employed to get feasible porous topologies of assumed thick PhP, efficiently.

Keywords:
Materials science Band gap Auxetics Topology optimization Hyperelastic material Deformation (meteorology) Acoustic metamaterials Metamaterial Stiffness Photonic crystal Composite material Topology (electrical circuits) Acoustics Structural engineering Optoelectronics Finite element method Physics Engineering

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Citation History

Topics

Acoustic Wave Phenomena Research
Physical Sciences →  Engineering →  Biomedical Engineering
Topology Optimization in Engineering
Physical Sciences →  Engineering →  Civil and Structural Engineering
Composite Structure Analysis and Optimization
Physical Sciences →  Engineering →  Mechanics of Materials
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