Optimal Interior Mounted Permanent Magnet Synchronous Motors MTPA and MPPA Control Based on Sliding Mode Approaches

Hashim Alnami, C. Pang, Avinash Papineni, Xin Wang
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引用次数: 1

Abstract

This paper presents novel sliding mode control (SMC) approaches for Maximum Torque Per Ampere (MTPA) and Maximum Power Per Ampere (MPPA) of interior permanent magnet synchronous motors (IPMs). We first derive the first-order sliding mode control methods to improve the field oriented control’s resiliency against the external perturbations, extraneous noise and modeling uncertainties. And after that, we propose the higher-order sliding mode control to significantly reduce the chattering phenomenon which is inherent in the first order sliding mode control method. Based on the comparison studies, the conventional proportional-integral derivative based field oriented control shows sluggish response and is more sensitive to parameter perturbations and external torque disturbances. By introducing the novel sliding mode control methods, both of the speed and torque regulation performance of interior-mounted permanent magnet synchronous motor can be greatly improved. Computer simulation studies have shown the superior performance of the first-order and higher-order sliding mode controllers for interior permanent magnet synchronous motor speed and torque regulation applications.
基于滑模方法的最优内装永磁同步电动机MTPA和MPPA控制
本文提出了一种新的滑模控制方法,用于控制内嵌式永磁同步电动机的最大转矩/安培(MTPA)和最大功率/安培(MPPA)。我们首先推导了一阶滑模控制方法,以提高场定向控制对外部扰动、外来噪声和建模不确定性的弹性。在此基础上,提出了高阶滑模控制,显著降低了一阶滑模控制固有的抖振现象。对比研究表明,传统的基于比例积分导数的磁场定向控制响应缓慢,且对参数扰动和外部转矩干扰更为敏感。通过引入新的滑模控制方法,可以大大提高内置式永磁同步电动机的调速性能和转矩调节性能。计算机仿真研究表明,一阶和高阶滑模控制器在内部永磁同步电机调速和转矩调节方面具有优越的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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