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Design, fabrication and characterization of a very low frequency piezoelectric energy harvester designed for heart beat vibration scavenging

机译:用于心跳振动清除的超低频压电能量采集器的设计,制造和表征

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Current version of implantable cardioverter defibrillators (ICDs) and pacemakers consists of a battery-powered pulse generator connected onto the heart through electrical leads inserted through the veins. However, it is known that long-term lead failure may occur and cause a dysfunction of the device. When required, the removal of the failed leads is a complex procedure associated with a potential risk of mortality. As a consequence, the main players in the field of intracardiac implants prepare a next generation of devices: miniaturized and autonomous leadless implants, which could be directly placed inside the heart. In this paper, we discuss the frequency content of a heart vibration spectrum, and the dimensional restrictions in the case of a leadless pacemaker. In combination with the requirements in terms of useable energy, we will present a design study of a resonant piezoelectric scavenger aimed at powering such a device. In particular, we will show how the frequency-volume-energy requirement leads to new challenges in terms of power densities, which are to be addressed through implementation of innovative piezoelectric thick films fabrication processes. This paper also presents the simulation, fabrication and the testing of an ultralow frequency (15Hz) resonant piezoelectric energy harvester prototype. Using both harmonic (50mg) and real heart-induced vibrations, we obtained an output power of 60uW and l0μW respectively. Finally, we will place emphasis on the new constraint represented by the gravitational (orientation) sensitivity inherent to these ultra low frequency resonant energy harvesters.
机译:当前版本的植入式心脏复律除颤器(ICD)和起搏器由电池供电的脉冲发生器组成,该脉冲发生器通过穿过静脉的电导线连接到心脏上。但是,众所周知,可能会发生长期的引线故障,并导致设备功能异常。在需要时,移除失败的引线是一个复杂的过程,具有潜在的死亡风险。因此,心内植入物领域的主要参与者准备了下一代设备:小型化且自主的无铅植入物,可以将其直接放置在心脏内部。在本文中,我们讨论了心脏振动频谱的频率内容,以及无引线起搏器的尺寸限制。结合可利用能量方面的要求,我们将介绍旨在为此类设备供电的谐振压电扫气器的设计研究。特别是,我们将展示频率-体积-能量要求如何导致功率密度方面的新挑战,这些挑战将通过实施创新的压电厚膜制造工艺来解决。本文还介绍了超低频(15Hz)谐振压电能量采集器原型的仿真,制造和测试。使用谐波(50mg)和真实的心脏振动,我们分别获得了60uW和10μW的输出功率。最后,我们将重点放在这些超低频共振能量采集器固有的重力(方向)灵敏度所代表的新约束上。

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