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Boost Three-Effective-Vector Current Control Scheme for a Brushless DC Motor With Novel Five-Switch Three-Phase Topology

机译:具有新型五开关三相拓扑的无刷直流电动机的Boost三效矢量电流控制方案

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摘要

This paper presents a boost five-switch three-phase (BFSTP) topology in brushless dc motor (BLDCM) drives by combining a four-switch three-phase (FSTP) inverter and a boost circuit together. In BLDCM drives, load and speed ranges are greatly restricted when the conventional FSTP inverter is employed, especially in the cases of solar power and battery, where power supply voltage is lower than the rated voltage of motor. Based on the novel topology, a boost three-effective-vector (BTEV) scheme is also presented. With the proposed BTEV scheme, two functions are realized. First, the voltage across the capacitors on the side of dc link is boosted by inserting shoot-through vectors in Modes V and VI, thus widening the speed and load ranges under low power supply voltage. Second, by taking the advantages of two adjusting vectors, possible distortion of currents caused by phase C back-EMF is restrained by employing a three-effective-vector scheme in Modes I and IV. The proposed BFSTP topology has a compact structure and a small size. Moreover, the BTEV current control scheme is easy to implement and needs no complex calculation involved in conventional vector control. The effectiveness of the proposed BFSTP topology and the BTEV scheme is validated through experiment.
机译:本文通过将四开关三相(FSTP)逆变器和升压电路结合在一起,提出了无刷直流电动机(BLDCM)驱动器中的升压五开关三相(BFSTP)拓扑。在BLDCM驱动器中,使用传统的FSTP逆变器时,负载和速度范围受到很大限制,尤其是在太阳能和电池的情况下,电源电压低于电动机的额定电压。基于新颖的拓扑结构,还提出了一种升压三有效矢量(BTEV)方案。利用所提出的BTEV方案,实现了两个功能。首先,通过在模式V和VI中插入直通矢量来提高直流链路一侧电容器两端的电压,从而扩大了低电源电压下的速度和负载范围。其次,利用两个调整矢量的优势,通过在模式I和IV中采用三有效矢量方案,可以抑制C相反电动势引起的电流失真。所提出的BFSTP拓扑结构紧凑且尺寸小。此外,BTEV电流控制方案易于实现,并且不需要传统矢量控制中涉及的复杂计算。通过实验验证了所提出的BFSTP拓扑结构和BTEV方案的有效性。

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