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首页> 外文期刊>Smart Materials & Structures >Enhancement of quasi-static strain energy harvesters using non-uniform cross-section post-buckled beams
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Enhancement of quasi-static strain energy harvesters using non-uniform cross-section post-buckled beams

机译:使用非均匀横截面折梁增强准静态应变能收割机

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摘要

Thanks to their efficiency enhancement systems based on post-buckled structural elements have been extensively used in many applications such as actuation, remote sensing and energy harvesting. The post-buckling snap-through behavior of bilaterally constrained beams has been exploited to create sensing or energy harvesting mechanisms for quasi-static applications. The conversion mechanism has been used to transform low-rate and low-frequency excitations into high-rate motions. Electric energy has been generated from such high-rate motions using piezoelectric transducers. However, lack of control over the post-buckling behavior severely limits the mechanism's efficiency. This study aims to maximize the levels of harvestable power by controlling the location of snap-throughs along the beam at different buckling transitions. Since the snap-through location cannot be controlled by tuning the geometric properties of a uniform beam, non-uniform cross-sections are examined. An energy-based theoretical model is herein developed to predict the post-buckling response of non-prismatic beams. The total potential energy is minimized under constraints that represent the physical confinement of the beam between the lateral boundaries. The experimentally validated results show that changing the shape and geometric dimensions of non-uniform beams allows for the accurate controlling of the snap-through location at different buckling transitions. A 78.59% improvement in harvested energy levels has been achieved by optimization of beam shape.
机译:由于其基于后扣结构元件的效率增强系统,在许多应用中广泛使用,例如致动,遥感和能量收集。双边约束光束的后屈曲的卡通行为已经利用以创建用于准静态应用的传感或能量收集机制。转换机制已被用于将低速率和低频激发转换为高速运动。使用压电换能器的这种高速运动产生电能。然而,对后屈曲行为的控制严重限制了机制的效率。本研究旨在通过在不同屈曲转变的梁沿着光束控制卡扣的位置来最大化收获功率的水平。由于通过调谐均匀光束的几何特性来控制卡通位置,因此检查不均匀的横截面。本文开发了一种基于能量的理论模型以预测非棱镜梁的后屈曲响应。在约束下,总势能最小化,表示横向边界之间的梁的物理限制。实验验证的结果表明,改变非均匀光束的形状和几何尺寸允许精确地控制不同屈曲转换的快照位置。通过优化梁形状实现了收获能量水平的78.59%。

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