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Self-stabilizing dielectric elastomer generators

机译:自稳定介电弹性器发生器

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Dielectric elastomer generators (DEGs) are an emerging technology for the conversion of mechanical into electrical energy. Despite many advantageous characteristics, there are still issues to overcome, including the need for charging at every cycle to produce an electrical output. Self-priming circuits (SPCs) are one possible solution, storing part of the electric energy output of one cycle to supply as input for the next, producing a voltage boost effect. Until now, studies regarding SPCs neglect to consider how the increasing voltage will create an electromechanical response and affect the DEG when driven by an oscillatory mechanical load. In the present work we model this force-based actuation, including coupling between the DEG and SPC, in order to predict the dynamics of the system. In such cases, the DEG has a mechanical response when charged (actuator behaviour), and as the voltage increases, this actuation-like effect increases the capacitance values that bound the cycle. We show how this inherent nonlinearity yields a reduction in the DEG's capacitance swing and reduces the performance of the SPC, but also self-stabilizes the system. This stability is useful in the design of robust DEG energy harvesters that can operate near to, but not enter, failure mode.
机译:介电弹性体发生器(DEGS)是一种用于将机械转换成电能的新兴技术。尽管特征许多,但仍然存在克服,包括在每个循环中充电的需要以产生电输出。自引导电路(SPC)是一种可能的解决方案,将一个循环的电能输出的一部分存储为下一步的输入,产生电压升压效果。到目前为止,关于SPCS的研究忽略了考虑如何在由振荡机械负载驱动时产生机电响应并影响DEG。在本工作中,我们模拟基于力的致动,包括在DEG和SPC之间的耦合,以预测系统的动态。在这种情况下,当充电(致动器行为)时,DEG具有机械响应,并且随着电压的增加,该致动效果增加了结合循环的电容值。我们展示了这种固有的非线性如何降低DEG电容摆动并降低SPC的性能,而且还可以自稳定系统。这种稳定性可用于设计靠近但不进入,失效模式的强大的DEG能量收割机的设计。

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