采用多电平迟滞控制器和合适的电压矢量抑制直流直流电流控制的换相转矩纹波

R. Heidari, K. Jeong, Jin-Woo Ahn
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引用次数: 0

摘要

为了实现对无刷直流(BLDC)电机的高性能控制,介绍了一种直接直流链路电流控制(DDLCC)方法,并与直接转矩控制(DTC)方法进行了比较。与DTC方法相似,所提出的DDLCC方法具有快速的瞬态响应;尽管如此,它具有更高的可靠性、成本效益和更低的扭矩波动。该方法的平均转矩波动小于直接转矩控制方法,但换相转矩波动较大。利用四电平迟滞控制器来区分换向,然后通过施加适当的电压矢量抑制换向转矩脉动。这些矢量为换向电流提供了相似的下降时间和上升时间,并抑制了换向转矩脉动。结果表明,与传统的直接转矩控制方法相比,适当的电压矢量保证了无刷直流电机的稳定性能,并减小了换向转矩脉动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Commutation Torque Ripple Reduction for Direct DC-link Current Control by Applying Multilevel Hysteresis Controller and Proper Voltage Vectors
To achieve high-performance control of the brushless direct current (BLDC) motors, a direct DC-link current control (DDLCC) is introduced and compared with the direct torque control (DTC) method. Similar to the DTC method, the proposed DDLCC method has a fast transient response; nonetheless, it comes with higher reliability, cost-effectiveness, and lower torque ripple. Although this method provides average torque ripples lower than those of the DTC method, the commutation torque ripple is higher. A four-level hysteresis controller is utilized to distinguish the commutations, and then, the commutation torque ripple is suppressed by applying appropriate voltage vectors. These vectors provide similar fall time and rise time for both commutated currents and suppress commutation torque ripple. The results verify these appropriate voltage vectors guarantee the stable performance of the BLDC motor as well as commutation torque ripple reduction compared to the conventional DTC method.
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