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Digital Sensorless Current Mode Control Based on Charge Balance Principle and Dual Current Error Compensation for DC–DC Converters in DCM

机译:基于电荷平衡原理和双电流误差补偿的DCM DC-DC转换器数字无传感器电流模式控制

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摘要

For discontinuous conduction mode (DCM) dc–dc converters with digital sensorless current mode (DSCM) control, an observed current error occurs, owing to a low-accuracy current observer. Moreover, a reference current error occurs due to a low-accuracy current controller or a finite dc gain of current loop. Conventionally, the observed current is compensated to increase current regulation accuracy, whereas the reference current error is neglected. However, for charge balance principle (CBP)-based DSCM (CBP-DSCM) control, this paper proves that the reference current should be compensated in a same quantity to that of observed current. Otherwise, single or unequal compensation leads to output voltage steady-state error. For this reason, a dual current error compensation strategy for CBP-DSCM control is proposed. It compensates the errors in a same quantity through a current error observer, which considers parasitics and calculates the current errors without approximation. To verify the proposed strategy, small-signal models with parasitics for both the converter and the controller are constructed by differential functions of key variables. Furthermore, converter stability is analyzed at typical operation condition, while the stability at various operation conditions is verified through robustness analysis. Finally, simulations and experimental results verify the analysis and the improved transient response of the converter.
机译:对于具有数字无传感器电流模式(DSCM)控制的不连续传导模式(DCM)dc-dc转换器,由于低精度电流观测器,会产生观察到的电流误差。此外,由于电流控制器的精度低或电流环路的直流增益有限,会产生参考电流误差。按照惯例,对观察到的电流进行补偿以提高电流调节精度,而忽略了参考电流误差。但是,对于基于电荷平衡原理(CBP)的DSCM(CBP-DSCM)控制,本文证明参考电流的补偿量应与观察到的电流相同。否则,单个或不相等的补偿会导致输出电压稳态误差。为此,提出了一种用于CBP-DSCM控制的双电流误差补偿策略。它通过电流误差观测器补偿相同数量的误差,该误差观测器考虑了寄生因素,并且无需近似即可计算电流误差。为了验证所提出的策略,通过关键变量的微分函数构造了转换器和控制器都具有寄生效应的小信号模型。此外,分析了转换器在典型运行条件下的稳定性,同时通过鲁棒性分析验证了在各种运行条件下的稳定性。最后,仿真和实验结果验证了转换器的分析和改进的瞬态响应。

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