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A digital closed-loop control strategy for maintaining the 180° phase shift of an interleaved BCM boost converter for PFC applications

机译:一种数字闭环控制策略,用于维持交错式BCM升压转换器在PFC应用中的180°相移

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This paper focuses on the design and implementation of a digital closed-loop control scheme to maintain the 180° phase shift of an interleaved Boundary-Conduction-Mode (BCM) boost converter. The closed-loop control scheme operates by differentially modulating the on-time of each phase to adjust the phase-shift. Zero-Current-Detection (ZCD) circuits control the turn-on instant for the MOSFET of each boost converter. The ZCD circuit is designed so that the MOSFET of each phase turns on after the energy stored in the output capacitance of the MOSFET has discharged back into the boost converter's input capacitor, resulting in reduced converter power losses. This is known as valley switching. The main advantage of using a closed-loop control scheme is that the ZCD circuitry always controls the turn-off instance of the MOSFET for each phase of the boost converter. Therefore BCM operation and valley switching is always ensured, and neither phase of the converter can enter Continuous-Conduction Mode (CCM), which can lead to high inductor currents and damage the converter. A digital control scheme was implemented using a TMS320F28069 microcontroller and experimental results are demonstrated on a 600 W prototype interleaved BCM converter.
机译:本文着重于数字闭环控制方案的设计和实现,以维持交错式边界传导模式(BCM)升压转换器的180°相移。闭环控制方案通过对每个相位的导通时间进行差分调制来调整相移。零电流检测(ZCD)电路控制每个升压转换器MOSFET的导通瞬间。 ZCD电路的设计使得在MOSFET的输出电容中存储的能量释放回升压转换器的输入电容器后,各相的MOSFET导通,从而降低了转换器的功率损耗。这就是所谓的谷底开关。使用闭环控制方案的主要优点是ZCD电路始终为升压转换器的每个相控制MOSFET的关断实例。因此,始终确保BCM运行和谷底开关,并且转换器的任何相位都不能进入连续导通模式(CCM),这会导致高电感电流并损坏转换器。使用TMS320F28069微控制器实现了数字控制方案,并在600 W原型交错BCM转换器上演示了实验结果。

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