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A Novel Algorithm Based on Polynomial Approximations for an Efficient Error Compensation of Magnetic Analog Encoders in PMSMs for EVs

机译:基于多项式逼近的电动汽车永磁同步电机磁模拟编码器有效误差补偿新算法

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摘要

This paper presents a novel algorithm based on polynomial approximations (PAs) for an efficient error compensation of magnetic analog encoders (MAEs) in permanent-magnet synchronous machines (PMSMs) intended for electric vehicle (EV) propulsion. The proposed PA algorithm requires a negligible memory space compared to a very high-resolution look-up table (LUT). The use of polynomials allows compensating every possible input rotor position without carrying out an interpolation or a rounding to the nearest quantized value. The PA algorithm has been implemented to work in real time on a TM4 EV drive controlling an 80 kW PMSM. The performance of the algorithm has been validated at 6000 and 9000 r/min under 85 and 55 Nm of torque, respectively. The electromagnetic interference (EMI) effects have been minimized using a type-2 phase-locked loop (PLL). The proposed PA algorithm assisted with the PLL is capable of reducing the total position error to a range as small as . The combination of these two algorithms is a promising solution for compensating the position error in quadrature analog encoders. The experimental results obtained with the 80 kW PMSM demonstrate the feasibility of low-cost MAEs for achieving high-performance field-oriented control (FOC) of PMSMs in EV drives.
机译:本文提出了一种基于多项式逼近(PAs)的新颖算法,可用于电动汽车(EV)推进永磁同步电机(PMSM)中的磁模拟编码器(MAE)的有效误差补偿。与非常高分辨率的查找表(LUT)相比,提出的PA算法所需的存储空间可忽略不计。多项式的使用允许补偿每个可能的输入转子位置,而无需进行内插或舍入到最接近的量化值。 PA算法已实现在可控制80kW PMSM的TM4 EV驱动器上实时工作。该算法的性能已分别在85和55 Nm的扭矩下以6000 r / min和9000 r / min进行了验证。使用2型锁相环(PLL)可以将电磁干扰(EMI)的影响降至最低。提出的借助PLL的PA算法能够将总位置误​​差减小到最小。这两种算法的组合是一种有希望的解决方案,用于补偿正交模拟编码器中的位置误差。 80 kW PMSM获得的实验结果证明了低成本MAE在电动汽车驱动器中实现PMSM的高性能磁场定向控制(FOC)的可行性。

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