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The effects of damage accumulation in optimizing a piezoelectric energy harvester configuration

机译:损伤累积对优化压电能量收集器配置的影响

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Bimorph piezoelectric elements are often used to harvest energy for low-power structural health monitoring systems. When these piezoelectric elements are deployed for extended periods of time and operate under near-resonant conditions, the resulting high amplitude cycling can lead to degradation of the piezoelectric element, resulting in a shift in the design fundamental frequency. For scenarios in which the piezoelectric harvester is subject to slowly-varying time-dependent frequency inputs, the natural frequency shift due to degradation may cause the piezoelectric harvester to detune from resonance, subsequently affecting the harvester's power output. The current study seeks to understand how the accumulation of damage shifts the optimal tip mass and resistive load in a bimorph piezoelectric energy harvester. A cantilever piezoelectric element is modeled utilizing coupled electromechanical equations in a distributed system. The piezoelectric is subject to ground accelerations; the resulting power output is recorded for a range of tip masses and resistive loads. A rainflow analysis is then performed to calculate the piezoelectric element's tip displacement amplitude and the corresponding cycle count. A damage accumulation model based on a weighted form of Miner's rule is then used to degrade the harvester's flexural rigidity, piezoelectric capacitance, and piezoelectric strain constant. The piezoelectric is again loaded and the process repeated. The resulting power output contours reveal how the optimal realization of tip mass and resistive load changes as damage accumulates in the piezoelectric element. Apparent trends in the power output contours are explained. Approved for publication, LA-UR-18-20075.
机译:双压电晶片压电元件通常用于为低功率结构健康监测系统收集能量。当这些压电元件被延长部署并在接近谐振的条件下工作时,所产生的高振幅循环会导致压电元件的退化,从而导致设计基频发生变化。对于压电采集器要经受时变频率随时间变化的频率输入的情况,由于降级而导致的固有频率偏移可能会导致压电采集器从谐振中失谐,从而影响采集器的功率输出。当前的研究旨在了解损伤的累积如何在双压电晶片压电能量采集器中转移最佳的尖端质量和电阻负载。悬臂式压电元件是在分布式系统中利用耦合的机电方程式建模的。压电材料会受到地面加速度的影响;记录产生的功率输出,包括一系列尖端质量和电阻性负载。然后进行雨流分析,以计算压电元件的尖端位移幅度和相应的周期数。然后使用基于Miner规则的加权形式的损伤累积模型来降低收割机的抗弯刚度,压电电容和压电应变常数。再次加载压电材料,并重复该过程。产生的功率输出轮廓揭示了随着压电元件中损坏的累积,尖端质量和电阻负载的最佳实现方式如何变化。解释了功率输出轮廓的明显趋势。批准发布,LA-UR-18-20075。

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