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A mathematical model for an integrated self priming dielectric elastomer generator

机译:集成式自吸介电弹性体发生器的数学模型

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Dielectric Elastomer Generators (DEG) can capture energy from natural movement sources such as wind, the tides and human locomotion. The harvested energy can be used for low power devices such as wireless sensor nodes and wearable electronics. A challenge for low power DEG is overcoming the losses associated with charge management. A circuit which can do this exists: the Self Priming Circuit (SPC) which consists of diodes and capacitors. The SPC is connected in parallel to the DEG where it transfers charge onto/off the DEG based on changes in the DEG capacitance. Modelling and experimental validation of the SPC have been performed in the past, allowing design and implementation of effective SPCs which match a particular DEG. While the SPC is effective, it is still an external circuit which adds additional mass and cost to the DEG. By splitting the DEG into separate capacitors and using them to build an SPC, the Integrated SPC (I-SPC) can be realized. This reduces the components required to build a SPC/DEG and improves the performance. This paper presents a mathematical model with experimental data of a first order I-SPC. Additionally, comparisons between the SPC and I-SPC are drawn.
机译:介电弹性体发生器(DEG)可以从自然运动源(例如风,潮汐和人类运动)中捕获能量。收集的能量可用于低功率设备,例如无线传感器节点和可穿戴电子设备。低功耗DEG的挑战在于克服与电荷管理相关的损耗。存在可以做到这一点的电路:自吸电路(SPC),由二极管和电容器组成。 SPC并联连接到DEG,在DEG上,它根据DEG电容的变化将电荷转移到DEG上/从DEG转移出电荷。过去已经对SPC进行了建模和实验验证,从而可以设计和实现与特定DEG相匹配的有效SPC。尽管SPC有效,但它仍然是一个外部电路,这会增加DEG的质量和成本。通过将DEG分成单独的电容器并使用它们来构建SPC,可以实现集成式SPC(I-SPC)。这减少了构建SPC / DEG所需的组件,并提高了性能。本文提出了具有一阶I-SPC实验数据的数学模型。此外,在SPC和I-SPC之间进行了比较。

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