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Five topologies of cantilever-based MEMS piezoelectric vibration energy harvesters: a numerical and experimental comparison

机译:基于悬臂的MEMS压电振动能量采集器的五种拓扑:数值和实验比较

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摘要

In the realm of MEMS piezoelectric vibration energy harvesters, cantilever-based designs are by far the most popular. For cantilever-based vibration energy harvesters, the active piezoelectric area near the clamped end is able to accumulate maximum strain-generated-electrical-charge, while the free end is used to house a proof mass to improve the power output without compromising the effective area of the piezoelectric generator since it experiences minimal strain anyway. However, despite while other contending designs do exist, this paper explores five selected micro-cantilever (MC) topologies, namely: a plain MC, a tapered MC, a lined MC, a holed MC and a coupled MC, in order to assess their relative performance as an energy harvester. Although a classical straight and plain MC offers the largest active piezoelectric area, alternative MC designs can potentially offer larger deflection and thus mechanical strain distribution for a given mechanical loading. Numerical simulation and experimental comparison of these 5 MCs (0.5 A mu m AlN on 10 A mu m Si) with the same practical dimensions of 500 A mu m and 2000 A mu m, suggest a cantilever with a coupled subsidiary cantilever yield the best power performance, closely followed by the classical plain cantilever topology.
机译:在MEMS压电振动能量收集器领域,基于悬臂的设计是迄今为止最受欢迎的设计。对于基于悬臂的振动能量收集器,在受钳端附近的有源压电区域能够积累最大的应变产生的电荷,而自由端用于容纳标准质量以提高功率输出而不会损害有效面积压电发电机的应力,因为它无论如何都要承受最小的应变。然而,尽管确实存在其他竞争性设计,但本文还是探讨了五个选定的微悬臂(MC)拓扑,即:普通MC,锥形MC,带衬里MC,带孔MC和耦合MC,以评估它们的拓扑。作为能量采集器的相对性能。尽管经典的直线型和普通型MC可以提供最大的有源压电面积,但其他MC设计可能会在给定的机械负载下提供更大的挠度,从而产生更大的机械应变。实际尺寸分别为500 A和2000 A的这5个MC(在10 A的Si上为0.5 A的AlN)的数值模拟和实验比较表明,带有耦合副悬臂的悬臂可产生最佳功率性能,紧随其后的是经典的平原悬臂拓扑。

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