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Fast Transient Response of Series Resonant Converters Using Average Geometric Control

机译:利用平均几何控制的串联谐振变换器快速瞬态响应

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Linear controllers and small-signal modeling techniques have been used for over 40 years to control power electronic converters around the equilibrium operating point. Outside the quiescent area, the shortcomings of linear controllers are well known and include uncertain large-signal transient behavior and sluggish dynamic/recovery response. In particular, resonant converters have inherent large-signal behavior, making the transient performance of small-signal linear controllers poor. This paper develops a geometric controller based on large-signal modeling to achieve enhanced dynamic response of the series resonant converter (SRC). The proposed modeling strategy provides detailed insight into the behavior of the SRC and creates an analytical framework to successfully perform geometric control. A new geometric control law is mathematically derived using average circular trajectories producing accurate and fast dynamics during startup, sudden load or reference changes. In order to validate the theoretical analysis, experimental and simulation results of an SRC are presented and compared to those of a linear and a nonlinear controller. The dynamic response is, on average, over 100 times faster than that of the designed linear controller, while overshoot is virtually eliminated.
机译:线性控制器和小信号建模技术已经使用了40多年,用于在平衡工作点附近控制功率电子转换器。在静态区域之外,线性控制器的缺点是众所周知的,包括不确定的大信号瞬态行为和缓慢的动态/恢复响应。特别是,谐振转换器具有固有的大信号特性,使得小信号线性控制器的瞬态性能很差。本文开发了一种基于大信号建模的几何控制器,以实现串联谐振转换器(SRC)增强的动态响应。提出的建模策略可提供对SRC行为的详细了解,并创建一个分析框架以成功执行几何控制。一种新的几何控制定律是使用平均圆轨迹在数学上得出的,从而在启动,突然负载或参考值变化期间产生准确而快速的动态。为了验证理论分析,提出了SRC的实验和仿真结果,并将其与线性和非线性控制器的仿真结果进行了比较。平均而言,动态响应比设计的线性控制器快100倍以上,而实际上可以消除过冲。

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