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Improving the Accuracy of an Absolute Magnetic Encoder by Using Harmonic Rejection and a Dual-Phase-Locked Loop

机译:通过使用谐波抑制和双相锁相环来提高绝对磁编码器的精度

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This paper proposes a method to improve the accuracy of an absolute magnetic encoder by using harmonic rejection (HR) and a dual-phase-locked loop (DPLL). The encoder consists of two permanent magnets: an edge-locatedmultipolar magnet (MPM) and a center-located bipolar magnet, in which the signal-processing accuracy of the MPM is crucial for achieving high accuracy of the entire encoder. However, the MPM signals are disturbed by non-idealities such as dc offsets, amplitude mismatch, low-and high-order harmonics, and random noises. In this paper, the HR approach investigates the characteristics of non-idealities of the phase detector and rejects them by using gradient descent. In addition, the DPLL remains robust by maintaining a zero steady-state error during a phase jump, a constant frequency, and a ramp frequency. The proposed method is simulated with MATLAB software and implemented in ARM STM32F407ZG. The obtained results demonstrate efficient performance. This method can be applied to any use of quadrature sinusoidal signals, such as in power grids and in permanent-magnet synchronous motor phase detection.
机译:本文提出了一种通过使用谐波抑制(HR)和双锁相环(DPLL)来提高绝对磁编码器精度的方法。编码器由两个永磁体组成:边缘定位的多极磁体(MPM)和中心定位的双极磁体,其中MPM的信号处理精度对于实现整个编码器的高精度至关重要。但是,MPM信号会受到非理想因素的干扰,例如直流偏移,幅度失配,低阶和高阶谐波以及随机噪声。在本文中,HR方法研究了鉴相器的非理想特性,并使用梯度下降法将其剔除。另外,DPLL通过在相位跳变,恒定频率和斜坡频率期间保持零稳态误差来保持鲁棒性。用MATLAB软件对该方法进行了仿真,并在ARM STM32F407ZG中实现。获得的结果证明了有效的性能。该方法可以应用于正交正弦信号的任何使用,例如在电网和永磁同步电动机相位检测中。

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