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Thickness-variable composite beams for vibration energy harvesting

机译:用于振动能量收获的厚度可变复合梁

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摘要

Researchers have recently focused on improving the efficiency of piezoelectric energy harvesters by redesigning their substrate beams. Two approaches have been explored, including changing the shape of the cross-section area, i.e., width variation, and changing the thickness of cantilever beams. The width changing approach suffers from the deduction of output power from the piezoelectric elements of the trimmed-off regions, while performance deterioration does not occur in the thickness-variable approach. The benefit of thickness-variable beams on energy harvesting has been analyzed theoretically, but its detailed experimental study is still absent. In this study, we for the first time fabricate a thickness-variable harvester based on the Garolite FR-4 epoxy laminate, and validate the superiority of the variable thickness beam on the harvester performance enhancement. A theoretical model is developed based on the Euler-Bernoulli beam theory and numerically solved via the Rayleigh-Ritz method. We compare the thickness-variable composite beam configuration with a conventional uniform-thickness counterpart and unveil the beneficial effect of evenly-distributed strain on performance enhancement. Experiments indicate that the thickness-variable method increases on the energy harvester efficiency by 78%.
机译:研究人员最近专注于通过重新设计它们的基板梁来提高压电能量收割机的效率。已经探索了两种方法,包括改变横截面区域的形状,即宽度变化,以及改变悬臂梁的厚度。宽度改变方法遭受从修剪区域的压电元件的输出功率的推导,而在厚度可变方法中不会发生性能劣化。从理论上分析了厚度可变光束对能量收集的益处,但其详细的实验研究仍然存在。在这项研究中,我们首次制造基于GoRoLite FR-4环氧树脂层的厚度可变收割机,并验证了可变厚度梁对收割机性能增强的优越性。基于Euler-Bernoulli光束理论开发了理论模型,通过瑞利-Ritz方法数值解决。我们将厚度可变复合梁构造与常规均匀厚度对应物进行比较,并揭示均匀分布应变对性能增强的有益效果。实验表明,厚度可变方法对能量收割机效率增加了78%。

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