基于ps - ekf的PMSM积分反步控制器的先进无传感器控制策略:dSPACE DS1104实验验证

IF 3.3 Q2 MULTIDISCIPLINARY SCIENCES
El-Houssine Bekkour , Zakariae Sakhri , Said Mahfoud , Badre Bossoufi , Safae Merzouk , Mohamed I. Mosaad , Shimaa A. Hussien
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引用次数: 0

摘要

永磁同步电机(pmms)的高性能无传感器(SL)控制仍然是现代工业应用中的一个关键挑战,特别是在机械传感器不切实际的恶劣环境中。本文提出了一种将扩展卡尔曼滤波(EKF)与积分反步控制器(IBSC)相结合的先进的SL位置和速度(PS)方法。开发的SLPS-IBSC-EKF方法在保持高动态性能的同时消除了对位置和速度传感器的需求。为了实现这一目标,EKF具有最佳的统计公式和对非线性系统的适应性,即使在存在噪声的情况下也能确保转子PS的精确重建。同时,IBSC通过基于Lyapunov稳定性准则的递归设计,自适应补偿了PMSM的非线性,保证了外部干扰下的稳定性,并解决了参数的不确定性。此外,集成积分作用显著降低了稳态跟踪误差,提高了抗干扰性,提高了整体控制性能。在Matlab/Simulink中的对比分析表明,该方法在几个关键性能指标上优于SLPS-PI-EKF技术,包括沉降时间、上升时间、抑制时间、稳态误差和扭矩脉动(峰对峰)。与SLPS-PI-EKF相比,SLPS-IBSC-EKF分别提高了91.7%、90.9%、89.9%、85.6%和63.4%。此外,与文献中其他最新方法的性能比较表强化了所提出方法的优点。最后,利用DSPACE DS1104电路板在小型物理测试台上对SLPS-IBSC-EKF进行了实现和测试。这些测试结果证实了与仿真的良好相关性,并证明了所提出的方法在实时实现中的实际可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An advanced sensorless control strategy using PS-EKF-based Integral Backstepping Controller for PMSM : Experimental validation using dSPACE DS1104
High-performance sensorless (SL) control of Permanent Magnet Synchronous Motors (PMSMs) remains a crucial challenge in modern industrial applications, particularly in harsh environments where mechanical sensors are impractical. In this paper, we propose an advanced SL position and speed (PS) approach combining an extended Kalman filter (EKF) with an Integral Backstepping controller (IBSC). The developed SLPS-IBSC-EKF method eliminates the need for position and speed sensors while maintaining high dynamic performance. To achieve this, the EKF with its optimal statistical formulation and adaptability to non-linear systems ensures precise reconstruction of rotor PS even in the presence of noise. Meanwhile, the IBSC, through its recursive design based on Lyapunov stability criteria, adaptively compensate for PMSM non-linearities, guarantees stability against external disturbances, and addresses parametric uncertainties. Furthermore, incorporating integral action significantly reduces steady-state tracking errors, improves disturbance rejection, and enhances overall control performance. Comparative analysis in Matlab/Simulink shows that the proposed method surpasses the SLPS-PI-EKF technique across several key performance metrics, including Settling time, Rise time, Rejection time, Steady-State Error and Torque ripple (peak-to-peak). These improvements represent enhancements of 91.7 %, 90.9 %, 89.9 %, 85.6 %, and 63.4 % respectively, achieved by the SLPS-IBSC-EKF compared to the SLPS-PI-EKF. Furthermore, a performance comparison table with other recent methods from the literature reinforces the advantages of the proposed method. Finally, the SLPS-IBSC-EKF is implemented and tested on a small-scale physical test bench using the DSPACE DS1104 board. The results from these tests confirm excellent correlation with simulations and demonstrate the practical viability of the proposed method for real-time implementation.
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来源期刊
Scientific African
Scientific African Multidisciplinary-Multidisciplinary
CiteScore
5.60
自引率
3.40%
发文量
332
审稿时长
10 weeks
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