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首页> 外文期刊>IEEE Transactions on Power Electronics >Load Characterization in High-Frequency IPT Systems Using Class EF Switching Waveforms
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Load Characterization in High-Frequency IPT Systems Using Class EF Switching Waveforms

机译:使用类EF切换波形的高频IPT系统负载表征

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Large magnetic field volumes associated with core-less high-frequency inductive power transfer (HF-IPT) systems allow multiple receivers to be powered from one transmitter, but also provide greater probability for foreign objects to couple to the system. Knowledge of the types of objects (legitimate receivers or otherwise) that are coupled to the transmitter is critical. Such knowledge on the transmit side would allow the system to be deactivated in the presence of foreign objects, and to determine the exact state of tuning of the receivers so that it may adjust itself accordingly to optimize system performance. This article introduces a technique to calculate the induced voltage generated by coupled receivers and foreign objects on the transmit coil in real time. Changes in the position or electrical quantities of the receivers, and foreign objects, alter the induced voltage on the transmit coil, and with it the trajectory of the switching waveforms of the inverter driving the transmit coil. From the shape of these waveforms, information on the phase and amplitude of the induced voltage can be extracted, thus enabling the induced voltage on the primary to be estimated with a single, easy to access, voltage measurement, which is easier than estimating the induced voltage from measurements of coil current and total coil voltage. We used a support-vector-machine (SVM) to perform regression analysis on the drain voltage data. The experimental setup uses a 100 W, 13.56 MHz Class EF inverter, and the model was generated from a large number of samples of the drain voltage waveforms operating at different known loads. These were generated from our in-house HF-IPT test load, which uses a Class EF synchronous rectifier. The results allow the induced voltage on the transmit coil to be estimated in real time from the drain voltage waveform alone, with a normalized root mean square error of 1.1% for the real part (reflected resistance) and 1.2% for the imaginary part (reflected reactance). This article is accompanied by a video file demonstrating the experiments.
机译:与核心的高频感应电力传输(HF-IPT)系统相关联的大型磁场卷允许多个接收器从一个发射器供电,但也为耦合到系统提供更大的外来对象概率。耦合到发射器的对象类型(合法接收器或其他方式)的知识至关重要。在发射侧的这种知识将允许系统在存在异物存在下停用,并确定接收器的调谐的确切状态,使得它可以相应地调整以优化系统性能。本文介绍了一种技术来实时计算通过耦合接收器和耦合线圈上的异物产生的感应电压。接收器的位置或电量的变化和异物,改变发射线圈上的感应电压,并用驱动发射线圈的逆变器的开关波形的轨迹。从这些波形的形状,可以提取关于感应电压的相位和幅度的信息,从而通过单个,易于访问的电压测量来估计初级电压的感应电压,这比估计所诱导更容易线圈电流测量和总线圈电压的电压。我们使用了支持 - 向量机(SVM)来对漏极电压数据进行回归分析。实验设置使用100W,13.56 MHz类EF逆变器,并且从在不同已知负载下操作的大量漏极电压波形样本产生该模型。这些是从我们内部的HF-IPT测试负载生成的,它使用类别的EF同步整流器。结果允许从漏极电压波形实时估计发射线圈上的感应电压,其归一化的根均线误差为1.1%的实体部分(反射电阻)和1.2%的虚部(反射反应)。本文伴随着演示实验的视频文件。

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