A Primary-Side Gain-Scheduled Controller Based on Dynamic Coupling Estimation for Inductive Battery Charging Systems with Sub-resonant Frequency Control

Jiayu Zhou, G. Guidi, Shuxin Chen, Yi Tang, J. Suul
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Abstract

Inductive power transfer (IPT) systems in high-power transport applications are often required to operate under highly variable conditions, including a wide range of coupling and output power. For classical controllers, a fixed gain is selected to ensure the system stability in the full range of operation, which poses a challenge to the dynamic performance of the system with different working conditions. This paper presents a primary-side gain-scheduled controller for inductive battery charging systems with the sub-resonant frequency control to significantly improve the system dynamic response. The output power and dynamic coupling of IPT systems with the sub-resonant frequency control are estimated in real-time by using only the information on the primary side. The parameters of the gain-scheduled controller are then determined by the power reference value and estimated coupling, to ensure the rapid response and stability of the system. Moreover, the risk of instability and failure caused by dual-side communication in closed-loop power control is avoided. Effectiveness and feasibility of the proposed method are validated by simulation and experimental results from a small-scale laboratory prototype.
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基于动态耦合估计的次谐振感应式电池充电系统主侧增益调度控制器
大功率传输应用中的感应功率传输(IPT)系统通常需要在高度可变的条件下运行,包括大范围的耦合和输出功率。对于经典控制器,为了保证系统在全工作范围内的稳定性,选择了固定的增益,这对系统在不同工况下的动态性能提出了挑战。本文提出了一种采用次谐振频率控制的感应式电池充电系统的一次侧增益调度控制器,以显著改善系统的动态响应。采用次谐振频率控制的IPT系统的输出功率和动态耦合仅利用一次侧的信息进行实时估计。然后根据功率参考值和估计耦合确定增益计划控制器的参数,以保证系统的快速响应和稳定性。避免了闭环功率控制中由于双向通信而产生的不稳定和故障风险。仿真和实验结果验证了该方法的有效性和可行性。
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