考虑损耗和换能器不对准的超声功率传递系统二维等效电路模型

Lining Zhang;Lihua Tang;Liu Liu;Shanyu Zhao;Muxuan Guo;Kean Aw;Aiguo Patrick Hu
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摘要

超声功率传输技术是一种极具发展潜力的无线功率传输技术。建立一个准确描述系统传输过程的模型是设计UPT系统的关键。当压电换能器的厚度与直径相比不能忽略时,同时考虑厚度方向和径向方向的振动可以提高模型的精度。此外,现有的二维等效电路模型忽略了系统在传输过程中的损耗。此外,在实际的UPT系统中,轻微的径向不对准也会影响传输性能。在本文中,我们提出了UPT系统的二维等效电路模型,该模型考虑了圆柱形压电换能器的损耗和径向失调,该模型基于双端口网络推导,并通过比较模型和实验的系统输入阻抗、输入功率、输出功率和效率来验证。结果表明,在不存在压电换能器径向错位的情况下,与现有的一维和二维等效电路模型相比,该等效电路模型的精度得到了显著提高。模型中径向偏差矩阵的推导和引入也能准确地表示系统,模型和实验结果一致,表明系统性能随径向偏差变化的趋势相同。所建立的等效电路模型为UPT系统的精确分析、设计、控制和优化奠定了基础。
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A 2-D Equivalent Circuit Model of Ultrasonic Power Transfer Systems Considering Losses and Transducer Misalignment
Ultrasonic power transfer (UPT) is a promising wireless power transfer technique with great development potential. Establishing an accurate model that describes the transmission process of the system is crucial for designing an UPT system. When the thickness of the piezoelectric transducer cannot be neglected compared to its diameter, considering vibrations in both thickness and radial directions can improve the model accuracy. Moreover, losses in the system during transmission was overlooked in the existing two-dimensional equivalent circuit model. In addition, slight radial misalignment in a practical UPT system can affect the transmission performance. In this article, we propose a 2-D equivalent circuit model of UPT systems that takes into account both losses and radial misalignment for cylindrical piezoelectric transducers, which is derived based on a two-port network and validated by comparing the system input impedance, input power, output power, and efficiency from the model and experiment. The results demonstrate that without radial misalignment of piezoelectric transducers, the proposed equivalent circuit model improved the accuracy significantly as compared with the existing 1-D and 2-D models. The derivation and incorporation of the radial misalignment matrix in the model also shows an accurate representation of the system and the consistent results from the proposed model and experiment are obtained showing the same trend of system performance with varying radial misalignment. The developed equivalent circuit model lays the foundation for accurate analysis, design, control, and optimization of UPT systems.
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