Jin Rencheng, Chen Ji, Hu Peihao, Li Jianzhang
Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, Dalian 116024, China.
Sensors (Basel). 2024 Jan 26;24(3):817. doi: 10.3390/s24030817.
In the realm of sensorless control for a permanent magnet synchronous motor (PMSM), the flux observer algorithm is widely recognized. However, the estimation accuracy of rotor position is adversely impacted by the interference from DC bias and high-order harmonics. To address these issues, an advanced flux observation method, second-order generalized integrator flux observer extend (SOGIFO-X), is introduced in this paper. The study begins with a theoretical analysis to establish the relationship between flux observation error and rotor position error. The SOGIFO-X method, developed in this study, is compared with traditional methods such as the Low Pass Filter (LPF) and second-order generalized integrator flux observer (SOGIFO), employing mathematical rigor and Bode plot analysis. The emphasis is on the methodology and the general performance improvements SOGIFO-X offers over conventional methods. Simulations and experiments were conducted to assess the impact of SOGIFO-X on the steady-state and dynamic performances of sensorless control. Findings indicate that SOGIFO-X demonstrates significant enhancements in terms of reducing the reduced flux observation error, contributing to the advancement of position estimation accuracy and sensorless motor control technology.
在永磁同步电机(PMSM)的无传感器控制领域,磁通观测器算法得到了广泛认可。然而,转子位置的估计精度会受到直流偏置和高阶谐波干扰的不利影响。为了解决这些问题,本文介绍了一种先进的磁通观测方法,即二阶广义积分器磁通观测器扩展(SOGIFO-X)。该研究首先进行理论分析,以建立磁通观测误差与转子位置误差之间的关系。本研究开发的SOGIFO-X方法与传统方法(如低通滤波器(LPF)和二阶广义积分器磁通观测器(SOGIFO))进行了比较,采用了数学严谨性和波特图分析。重点在于SOGIFO-X方法的方法论以及它相对于传统方法在总体性能上的改进。进行了仿真和实验,以评估SOGIFO-X对无传感器控制的稳态和动态性能的影响。研究结果表明,SOGIFO-X在降低磁通观测误差方面有显著提升,并有助于提高位置估计精度和无传感器电机控制技术。