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首页> 外文期刊>Electronics >Simulation Model of a 2-kW IPT Charger with Phase-Shift Control: Validation through the Tuning of the Coupling Factor
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Simulation Model of a 2-kW IPT Charger with Phase-Shift Control: Validation through the Tuning of the Coupling Factor

机译:具有相移控制的2 kW IPT充电器的仿真模型:通过调整耦合因子进行验证

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摘要

When applied to road vehicle electrification, inductive power transfer (IPT) technology has the potential to boost the transition from combustion engines to electric motors powered by a battery pack. This work focuses on the validation of a PSpice circuit model developed as a replica of a 2-kW IPT prototype with series-series compensation operating at 18.65 kHz. The laboratory prototype has the three stages commonly found in an IPT system: an inverter, controlled by the phase-shift technique, a coil coupling and a load. Simulations were run with the circuit model for three different distances between the two coils of the inductive coupling, all of which are of interest for practical chargers: 125, 150 and 175 mm. The validation approach was based on tuning the magnetic coupling factor for each distance and a set of ten load resistances, until the best match between the simulated and the experimental peak currents supplied by the inverter was found in each case. The coupling factors obtained from the simulation work are in good agreement with their experimental counterparts for the three distances, provided the duty cycle of the inverter output voltage is not too small. The circuit model developed is, therefore, able to reproduce the behavior of the laboratory prototype with sufficient accuracy over a wide range of distances between coils and loading conditions.
机译:当应用于道路车辆电气化时,感应功率传输(IPT)技术具有促进从内燃机到由电池组供电的电动机过渡的潜力。这项工作集中于验证PSpice电路模型,该模型是作为2kW IPT原型的复制品开发的,具有18.65 kHz的串联补偿。实验室原型具有IPT系统中常见的三个阶段:通过相移技术控制的逆变器,线圈耦合和负载。使用电路模型对电感耦合的两个线圈之间的三个不同距离进行了仿真,所有这些对于实用充电器都很重要:125、150和175 mm。验证方法基于调整每个距离的磁耦合因子和一组十个负载电阻,直到在每种情况下都找到逆变器提供的仿真峰值电流与实验峰值电流之间的最佳匹配。在逆变器输出电压的占空比不太小的情况下,从仿真工作获得的耦合因子在三个距离上均与它们的实验对象非常吻合。因此,开发的电路模型能够在线圈和负载条件之间的较宽距离范围内以足够的精度再现实验室原型的行为。

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