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Interplay Between Phononic Bandgaps And Piezoelectric Microstructures For Energy Harvesting

机译:声子带隙与压电微结构之间的相互作用,以进行能量收集

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The paper introduces a multifunctional structural design combining superior mechanical wave filtering properties and energy harvesting capabilities. The proposed concept is based on the ability of most periodic structures to forbid elastic waves from propagating within specific frequency ranges known as phononic bandgaps. The bandgap density and the resulting filtering effect are dramatically enhanced through the introduction of a microstructure consisting of stiff inclusions which resonate at specific frequencies and produce significant strain and energy localization. Energy harvesting is achieved as a result of the conversion of the localized kinetic energy into electrical energy through the piezoelectric effect featured by the material in the microstructure. The idea is illustrated through the application to hexagonal truss-core honeycombs featuring periodically distributed stiff cantilever beams provided with piezoelectric electrodes. The multifunctional capability results from the localized oscillatory phenomena exhibited by the cantilevers for excitations falling in the neighborhood of the bending fundamental frequencies of the beams. This application is of particular interest for advanced aerospace and mechanical engineering applications where distinct capabilities are simultaneously pursued and weight containment represents a critical design constraint. The scalability of the analysis suggests the possibility to miniaturize the design to the microscale for microelectromechanical systems (MEMS) applications such as self-powered microsystems and wireless sensors.
机译:本文介绍了一种多功能结构设计,结合了卓越的机械波滤波性能和能量收集功能。提出的概念基于大多数周期结构的能力,即弹性波在称为声子带隙的特定频率范围内传播。带隙密度和所产生的滤波效果通过引入由在特定频率下共振并产生明显应变和能量局部化的硬质夹杂物组成的微结构而得到显着增强。由于局部动能通过微观结构中的材料所具有的压电效应而转化为电能,因此实现了能量收集。通过将其应用于具有周期性分布的带有压电电极的刚性悬臂梁的六角形桁架芯蜂窝,可以说明这一想法。多功能功能是由悬臂所表现出的局部振荡现象产生的,该振荡现象是针对落在光束弯曲基频附近的激发。对于高级航空航天和机械工程应用而言,该应用特别受关注,在这些应用中,同时追求独特的功能,而重量控制则成为关键的设计约束。分析的可扩展性表明,可以将微机电系统(MEMS)应用(例如自供电微系统和无线传感器)的设计微型化。

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