论文标题
宽带压电能量收获的电路解决方案:阻抗分析
Circuit Solutions towards Broadband Piezoelectric Energy Harvesting: An Impedance Analysis
论文作者
论文摘要
在对压电能量收集(PEH)系统的研究中,文献表明,电路的进步对共振能量收集能力的增强具有显着影响。另一方面,最近使用相变(PV)同步开关技术的一些研究发现,高级电路解决方案还可以扩大收获带宽。但是,现有的能量收集电路的可用诱导动力学跨度未正确定义和证明。如果不使用通用的理论语言,不同电路之间的性能比较将无法达到公平。鉴于这些,本文使用不同的界面电路对PEH系统的机电关节动力学进行了基于阻抗的分析和比较。鉴于电路解决方案的共振可调节性在动能收割机的常规理想模型中没有受到关注,因此我们首先提出了一个更具包容性的理想模型,以更好地泛化。在实践中,事实证明,实用能量收集电路的可实现动态范围只是理想领域的某些子集。引入理想目标后,提供了有关PV电路解决方案可达到的范围的详细定量研究。不同界面电路的仿真和实验结果与理论分析表现出良好的一致性。可以得出结论,共振性强烈取决于在等效阻抗平面的反应性方向上可实现的程度。实际上,机电耦合条件和介电损耗也可能影响共振性。本文提供的一般理想模型和定量阻抗分析有助于指导未来的设计工作,以实现高能力和宽带PEH系统。
In the studies of piezoelectric energy harvesting (PEH) systems, literature has shown that circuit advancement has a significant effect on the enhancement of energy harvesting capability in resonance. On the other hand, some recent studies using the phase-variable (PV) synchronized switch technologies have found that the advanced circuit solutions can also broaden the harvesting bandwidth. However, the available span of the electrically induced dynamics by the existing energy harvesting circuits was not properly defined and demonstrated. Performance comparison among different circuits cannot be fairly achieved without using a common theoretical language. Given these, this paper provides an impedance-based analysis and comparison on the electromechanical joint dynamics of the PEH systems using different interface circuits. Given that the resonance tunability by circuit solutions has received no attention in the conventional ideal model of kinetic energy harvester, we firstly propose a more inclusive ideal model for better generalization. In practice, it was proven that the attainable dynamic ranges of the practical energy harvesting circuits are only some subsets of the ideal realm. A detailed quantitative study on the attainable ranges of the PV circuit solutions is provided after the introduction of the ideal target. Simulation and experimental results of different interface circuits show good agreement with the theoretical analysis. It can be concluded that the resonance tunability strongly depends on the achievable extent in the reactive direction of the equivalent impedance plane. In practice, the electromechanical coupling conditions and dielectric loss might also influence the resonance tunability. The general ideal model and quantitative impedance analysis provided in this paper help guide the future design effort towards high-capability and broadband PEH systems.