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Fatigue study and improve reliability of cantilever type micro piezoelectric energy harvesters reinforced with flexible adhesive conductive tape

机译:挠性导电胶带增强的悬臂式微压电集能器的疲劳研究及可靠性提高

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Cantilever type piezoelectric energy harvester (PEH) is widely adopted in the design of vibration energy harvesters because of simple, effective and easy to fabricate. When the PEH is working under excitation of continuous vibration sources, like mounting on motors, reliability and durability is a major concern. The failure mode and fatigue issues will be important design considerations in field applications. Since the largest strain of a cantilever structure is located in the clamping position of fixed end, the location is therefore the weakest point of the structure and the hot zone of mechanical cracks. The failure mode due to fatigue under long time excitation of vibration sources is typically continuously developing small cracks on the piezoelectric PZT films till tearing the surface electrodes and caused open circuit to the output circuitry. Therefore, extending the lifetime with minimize the surface electrodes cracking becomes a key point for field applications. Previously, we focused on the output performance of PEH. At PowerMEMS 2014, we presented a high performance PEH based on PZT thin films fabricated with a homemade PZT deposition equipment on stainless steel substrates. We confirmed that the stainless steel based PEH can generate better output power than silicon based devices under the same vibration excitation levels, and also the stainless based PEH can have longer lifetime when excited at higher vibration levels due to better mechanical strength. In this study, we tried to further reinforce the PEH with a conductive adhesive tape sticking on the surface electrode near the clamping position. We investigated the change of failure mode and mechanical behaviors, including the frequency bandwidth and non-linearity of the piezoelectric energy harvester. The PEH devices was mounted on a shaker for long time testing with vibration frequency set around 120Hz at 0.5g, 0.6g, and 0.7g acceleration vibration levels. The electrodes of the PEH device were cracked after 13 million cycles under 0.5g and 1 million cycles under 0.6g. The PEH has significant output power decreasing after the electrode is cracked and before being fully open circuit. The cracks of stainless steel substrate was also found after 1 million cycles under 0.7g vibration. For the device reinforced with conductive adhesive tape, we can see a steady output without degradation extended to more than 1.5 million cycles under 0.7g vibration. The other interesting finding in this study is with the added damping after adhering the conductive tape, the frequency bandwidth increased from 1.5Hz to 4Hz under 0.5g vibration level while the resonance frequency increased from 105Hz to 128Hz. Moreover, the reinforced devices have much better stability and linearity performance compared with the original devices. All the experimental details and discussion of the flexible conductive adhesive tape reinforced PEH will all be detailed in this paper.
机译:悬臂式压电能量收集器(PEH)由于其简单,有效且易于制造而被广泛应用于振动能量收集器的设计中。当PEH在连续振动源的激励下工作时(例如安装在电动机上),可靠性和耐用性是一个主要问题。失效模式和疲劳问题将是现场应用中的重要设计考虑因素。由于悬臂结构的最大应变位于固定端的夹紧位置,因此该位置是结构的最弱点和机械裂纹的热区。在长时间激励振动源下由于疲劳而导致的故障模式通常是在压电PZT膜上连续产生小裂纹,直到撕裂表面电极并导致输出电路断路为止。因此,以最小的表面电极裂纹来延长寿命成为现场应用的关键。以前,我们专注于PEH的输出性能。在PowerMEMS 2014上,我们展示了一种基于PZT薄膜的高性能PEH,该薄膜是用自制PZT沉积设备在不锈钢基板上制造的。我们证实,在相同的振动激励水平下,基于不锈钢的PEH可以比基于硅的器件产生更好的输出功率,并且由于较高的机械强度,当在较高的振动水平下激励时,基于不锈钢的PEH可以具有更长的寿命。在这项研究中,我们试图通过在夹紧位置附近的表面电极上粘贴导电胶带来进一步增强PEH。我们研究了失效模式和机械行为的变化,包括压电能量采集器的频率带宽和非线性。 PEH设备安装在振动台上进行长时间测试,振动频率设置为120Hz,加速度为0.5g,0.6g和0.7g。 PEH器件的电极在0.5g下经过1300万次循环后在0.6g下经过100万次循环后破裂。在电极破裂后和完全断开之前,PEH的输出功率会显着降低。在0.7g振动下经过一百万次循环后,还发现了不锈钢基材的裂纹。对于用导电胶带加固的设备,在0.7g振动下,我们可以看到稳定的输出而不会退化到超过150万次循环。这项研究中另一个有趣的发现是在粘贴导电胶带后增加了阻尼,在0.5g振动水平下,带宽从1.5Hz增加到4Hz,而谐振频率从105Hz增加到128Hz。此外,与原始设备相比,增强型设备具有更好的稳定性和线性性能。本文将详细介绍有关柔性导电胶带增强PEH的所有实验细节和讨论。

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