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Experimentally validated model and power optimization of a magnetoelectric wireless power transfer system in free-free configuration

机译:自由配置中磁电无线电力传输系统的实验验证模型和功率优化

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摘要

This article presents a thorough analysis and an equivalent circuit model of a wireless power transfer system utilizing magnetoelectric (ME) effects. Based on two-port theory, explicit analytical solutions of, (i) the ME coefficient alpha(ME) defined by the derivative of the generated electric field with respect to the applied magnetic field), and (ii) the power transferred to a load resistance, are derived and rigorously validated by experiments. The compact closed-forms of the optimal load and its corresponding maximum output power are developed. In our particular experimental system, a power of similar to 10 mW is attained at an applied magnetic flux density of 318.9 mu T with a laminated composite made by two Galfenol and one PZT layers. While alpha(ME) is widely used in the literature as a standard criterion to evaluate the performance of a ME transducer, we reveal that larger alpha(ME) does not always ensure higher optimum power delivered to the load. Instead, we quantify the essential influences of each magnetostrictive and piezoelectric phases on the maximum obtainable power. We show that the transduction factor between the magnetic and mechanical domains is often more critical for power optimization than the mechanical-electrical transduction factor as it determines and limits the maximum power available for transfer to a resistive load.
机译:本文介绍了利用磁电(ME)效应的无线电力传输系统的彻底分析和等效电路模型。基于两端口理论,明确的解析解,(i)所述ME系数α(ME)通过该衍生物所产生的电场相对于所定义的施加的磁场),和(ii)将电源传送到负载电阻,导出并通过实验严格验证。最佳负载和其相应的最大输出功率的紧凑型封闭形式开发的。在我们的特定的实验系统中,在达到相似的10毫瓦的功率在有复合材料层合由两个Galfenol和一个PZT层制成施加318.9亩Ť磁通密度。而α(ME)被广泛地在文献中作为标准的标准来评价ME换能器的性能,我们表明,较大的α(ME)并不总是确保输送给负载更高最佳功率。相反,我们量化的最大功率可获得每个磁致伸缩和压电阶段的主要影响。我们表明,磁和机械结构域之间的转导因子往往是比机械 - 电转导因子功率优化更关键,因为它决定和限制了可用于传输到电阻性负载的最大功率。

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