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A Bistable Piezoelectric Energy Harvester with an Elastic Magnifier for Applications in Medical Pacemakers

机译:一种带有弹性放大镜的双稳态压电能量采集器,用于医疗起搏器

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Embedded piezoelectric energy harvesting (PEH) systems in medical pacemakers have been an attractive and well visited research area. These systems typically utilize different configurations of beam structures with forcing originating from heart beat oscillations. The goal of these systems is to remove the pacemaker battery, which makes up 60-80% of the device volume, and replace it with a self-reliant power option. With emerging technologies encouraging a push towards leadless pacemakers typical energy harvesting beam structures are becoming inherently coupled with the heart system. The introduction of the nonlinearity resulting from the bistable magnetic interaction of two magnets is known to enhance energy harvesting performance due to its double-well potential behavior. Introducing the elastic magnifier enables large tip oscillations and high energy orbits for the bistable system. A continuous nonlinear model is derived for the bistable system (BPEH) and a one-degree-of-freedom linear mass-spring-damper model is derived for the elastic magnifier. The elastic magnifier (EM) will not consider the damping negligible due to the viscous nature of the heart, unlike most models. For experimental testing a physical model was created for the bistable structure and fashioned to an elastic magnifier. A hydrogel was chosen as the physical model for the EM. Experimental results have shown that the bistable piezoelectric energy harvester coupled with a linear elastic magnifier (BPEH+LEM) produces more power at certain input frequencies and operates a larger bandwidth than a PEH, BPEH, and a standard piezoelectric energy harvester with the elastic magnifier (PEH+LEM). Numerical simulations were validated by these results showing that this system enters high- energy and high orbit oscillations. It has been shown that BPEH systems implemented in medical pacemakers can have enhanced performance if positioned over the myocardial heart wall.
机译:医疗起搏器中的嵌入式压电能量收集(PEH)系统一直是一个有吸引力的且受到广泛欢迎的研究领域。这些系统通常利用束结构的不同配置,并迫使其源自心跳振荡。这些系统的目标是卸下占起搏器体积60-80%的起搏器电池,并更换为自力式电源选件。随着新兴技术的鼓励,人们开始转向无铅起搏器,典型的能量收集束结构已与心脏系统内在地结合在一起。由两个磁体的双稳态磁相互作用引起的非线性的引入由于其双阱势行为而增强了能量收集性能,这是众所周知的。引入弹性放大镜可为双稳态系统提供大的尖端振荡和高能量轨道。导出了双稳态系统(BPEH)的连续非线性模型,并导出了弹性放大器的一自由度线性质量-弹簧-阻尼器模型。与大多数模型不同,由于心脏的粘性,弹性放大器(EM)不会将阻尼忽略不计。为了进行实验测试,为双稳态结构创建了物理模型,并将其建模为弹性放大镜。选择水凝胶作为EM的物理模型。实验结果表明,双稳态压电能量采集器与线性弹性放大器(BPEH + LEM)结合使用,在某些输入频率下产生的功率更大,并且带宽比PEH,BPEH和带有弹性放大器的标准压电能量采集器( PEH + LEM)。这些结果验证了数值模拟,表明该系统进入了高能量和高轨道振荡。已经表明,如果将其放置在心肌心脏壁上,则在医疗起搏器中实施的BPEH系统可以提高性能。

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