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Maximum Performance of Piezoelectric Energy Harvesters When Coupled to Interface Circuits

机译:压电能量采集器与接口电路耦合时的最佳性能

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This paper presents a complete optimization of a piezoelectric vibration energy harvesting system, including a piezoelectric transducer, a power conditioning circuit with full semiconductor device models, a battery and passive components. To the authors awareness, this is the first time and all of these elements have been integrated into one optimization. The optimization is done within a framework, which models the combined mechanical and electrical elements of a complete piezoelectric vibration energy harvesting system. To realize the optimization, an optimal electrical damping is achieved using a single-supply pre-biasing circuit with a buck converter to charge the battery. The model is implemented in MATLAB and verified in SPICE. The results of the full system model are used to find the mechanical and electrical system parameters required to maximize the power output. The model, therefore, yields the upper bound of the output power and the system effectiveness of complete piezoelectric energy harvesting systems and, hence, provides both a benchmark for assessing the effectiveness of existing harvesters and a framework to design the optimized harvesters. It is also shown that the increased acceleration does not always result in increased power generation as a larger damping force is required, forcing a geometry change of the harvester to avoid exceeding the piezoelectric breakdown voltage. Similarly, increasing available volume may not result in the increased power generation because of the difficulty of resonating the beam at certain frequencies whilst utilizing the entire volume. A maximum system effectiveness of 48% is shown to be achievable at 100 Hz for a 3.38-cm generator.
机译:本文介绍了压电振动能量收集系统的完整优化,包括压电换能器,具有完整半导体器件模型的功率调节电路,电池和无源组件。在作者看来,这是第一次,所有这些元素都已集成到一个优化中。优化是在一个框架内完成的,该框架对完整的压电振动能量收集系统的机械和电气元素进行建模。为了实现优化,使用具有降压转换器的单电源预偏置电路为电池充电可获得最佳的电阻尼。该模型在MATLAB中实现,并在SPICE中进行了验证。完整系统模型的结果用于查找使功率输出最大化所需的机械和电气系统参数。因此,该模型产生了输出功率的上限以及完整的压电能量收集系统的系统有效性,因此,该模型既提供了评估现有收集器有效性的基准,又提供了设计优化收集器的框架。还显示出,增加的加速度并不总是导致增加的发电量,因为需要更大的阻尼力,这迫使收割机的几何形状改变以避免超过压电击穿电压。类似地,由于在利用整个体积的同时难以在某些频率下使波束共振,因此可用体积的增加可能不会导致发电量的增加。对于3.38厘米的发生器,在100 Hz时可实现48%的最大系统效率。

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