串联电感耦合谐振无线电力传输系统的负载等效电阻建模

Andrea Carloni, R. Di Rienzo, F. Baronti, R. Roncella, R. Saletti
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引用次数: 0

摘要

谐振电感耦合无线电力传输系统主要作为机会充电站在无人机等许多应用中实现。二次回路中桥式整流前的负载等效电阻的估计对于该类系统的优化设计至关重要。通常,等效负载电阻模型假设lc滤波电容器足够大,可以忽略流入电池的电流的纹波分量。本文研究了当设计者选择较小的输出电容值时,为了以非最优效率和较大的电池电压和电流纹波为代价获得最大的功率传输,上述假设是否仍然正确。在这种特殊情况下,通过LTSpice模拟计算负载等效电阻。将所得结果与文献中常用的典型模型进行了比较。他们表明,需要开发一种新的分析模型来提取负载等效电阻,以证明所发现的巨大差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling the Load Equivalent Resistance of a Series-Series Inductive-Coupled Resonant Wireless Power Transfer System
Resonant inductive coupled wireless power transfer systems are mainly implemented as opportunity charging stations in many applications, such as drones. The estimation of the load equivalent resistance seen before the bridge rectifier in the secondary circuit is crucial for the optimal design of this kind of systems. Generally, the equivalent load resistance model assumes the LC-filter capacitor large enough to neglect the ripple component of the current that flows into the battery. This paper investigates if the above assumption is still correct when the designer chooses a smaller value of the output capacitor, in order to maximize the power transfer at the expense of a nonoptimal efficiency and a larger ripple in the battery voltage and current. The load equivalent resistance was calculated by means of LTSpice simulations in this specific case. The results are compared to those obtained by the typical model generally used in the literature. They show that the development of a new analytical model to extract the load equivalent resistance is required to justify the large difference found.
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