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A novel control method for enhanced performance of single‐phase matrix converters

机译:一种增强单相矩阵变换器性能的新型控制方法

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Abstract The conventional topology of direct single‐to‐single‐phase matrix converter (SSMC) is widely adopted in industrial and power system‐related applications owing to its desired features. Current control methods in the literature either limit the voltage transfer ratio (VTR) or prohibit their utilization to drive inductive (RL) loads. In this study, we propose a novel control method that overcomes these limitations by enabling the SSMC to achieve relatively high VTRs while driving RL loads with negligible output voltage spikes and without current commutation problems. Further, the proposed control method improves the overall performance by reducing output voltage and source input current total harmonic distortion (THD) and offering soft‐switching at the commutation instances. The rigidity of the proposed control method over the counterpart methods in the literature is verified through simulation and experimental case studies over a wide range of synthesized output frequencies and modulation indexes. A 530‐W laboratory prototype is built for the experimental study. Results demonstrated the ability of the proposed method in enabling the SSMC to drive an RL load without current commutation issues and with mitigated output voltage spikes while achieving relatively high VTRs and suppressing the output voltage and source input current THD.
机译:摘要 传统的单相直连单相矩阵变换器(SSMC)拓扑结构因其特性而被广泛应用于工业和电力系统相关应用中。文献中的电流控制方法要么限制电压传输比 (VTR),要么禁止使用它们来驱动感性 (RL) 负载。在这项研究中,我们提出了一种新的控制方法,通过使SSMC能够实现相对较高的VTR,同时驱动输出电压尖峰可忽略不计的RL负载,并且没有电流换向问题,从而克服了这些限制。此外,所提出的控制方法通过降低输出电压和源电流总谐波失真(THD)并在换向实例上提供软开关来提高整体性能。通过对各种合成输出频率和调制指标的仿真和实验案例研究,验证了所提出的控制方法相对于文献中对应方法的刚性。为实验研究构建了 530-W 实验室原型。结果表明,所提方法能够使SSMC驱动RL负载,而不会出现换流问题,并降低输出电压尖峰,同时实现相对较高的VTR,并抑制输出电压和源输入电流THD。

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