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Universal Digital Controller for Boost CCM Power Factor Correction Stages Based on Current Rebuilding Concept

机译:基于当前重建概念的用于Boost CCM功率因数校正阶段的通用数字控制器

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摘要

Continuous conduction mode power factor correction (PFC) without input current measurement is a step forward with respect to previously proposed PFC digital controllers. Inductor volt-second (vsL) measurement in each switching period enables digital estimation of the input current; however, an accurate compensation of the small errors in the measured vsL is required for the estimation to match the actual current. Otherwise, they are accumulated every switching period over the half-line cycle, leading to an appreciable current distortion. A vsL estimation method is proposed, measuring the input (vg) and output voltage (vo). Discontinuous conduction mode (DCM) occurs near input line zero crossings and is detected by measuring the drain-to-source MOSFET voltage vds. Parasitic elements cause a small difference between the estimated voltage across the inductor based on input and output voltage measurements and the actual one, which must be taken into account to estimate the input current in the proposed sensorless PFC digital controller. This paper analyzes the current estimation error caused by errors in the ON-time estimation, voltage measurements, and the parasitic elements. A new digital feedback control with high resolution is also proposed. It cancels the difference between DCM operation time of the real input current, (TDCMg) and the estimated DCM time (TDCMreb). Therefore, the current estimation is calibrated using digital signals during operation in DCM. A fast feedforward coarse time error compensation is carried out with the measured delay of the drive signal, and a fine compensation is achieved with a feedback loop that matches the estimated and real DCM time. The digital controller can be used in universal applications due to the ability of the DCM time feedback loop to autotune based on the operation conditions (power level, input voltage, output v- ltage...), which improves the operation range in comparison with previous solutions. Experimental results are shown for a 1-kW boost PFC converter over a wide power and voltage range.
机译:相对于先前提出的PFC数字控制器,无需输入电流测量的连续导通模式功率因数校正(PFC)是一个进步。每个开关周期中的电感伏秒(vsL)测量可对输入电流进行数字估算;但是,为了使估算值与实际电流匹配,需要对测量的vsL中的小误差进行精确补偿。否则,它们会在半线周期的每个开关周期内累积,从而导致明显的电流失真。提出了一种vsL估计方法,用于测量输入(vg)和输出电压(vo)。不连续导通模式(DCM)发生在输入线过零附近,并通过测量漏极至源极MOSFET的电压vds进行检测。寄生元件会导致基于输入和输出电压测量值的电感器两端估计电压与实际值之间的微小差异,在拟议的无传感器PFC数字控制器中,必须考虑到这一点,才能估计输入电流。本文分析了由导通时间估算,电压测量和寄生元件中的误差引起的电流估算误差。还提出了一种新的高分辨率数字反馈控制。它消除了实际输入电流的DCM工作时间(TDCMg)与估算的DCM时间(TDCMreb)之间的差。因此,在DCM中运行期间,使用数字信号校准电流估算值。利用测量的驱动信号延迟执行快速前馈粗略时间误差补偿,并通过与估算的和实际的DCM时间匹配的反馈环路实现精细补偿。由于DCM时间反馈回路能够根据工作条件(功率水平,输入电压,输出电压...)进行自动调谐,因此该数字控制器可用于通用应用,与先前的解决方案。显示了在宽功率和电压范围内的1kW升压PFC转换器的实验结果。

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