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Stability and performance analysis of permanent magnet motors operating in flux-weakening region

机译:磁通弱化区域中永磁电动机的稳定性与性能分析

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Permanent magnet (PM) motors for traction drive applications generally require wide-speed range operation, where flux-weakening control is employed once the inverter voltage limit is reached. Constrained by the inverter voltage limit (voltage circle), the current control loop may become open loop due to the lack of voltage margin and the current can not be effectively controlled with respect to the reference. In addition, the control of d-axis and q-axis currents will affect each other although the cross-coupling compensation is applied. This paper presented an analytical model to describe the above issues and attempts to predict the current control loop performance in the flux-weakening region. By analyzing eigenvalues of the state matrix of the linearized current-loop model, the d-axis and q-axis current control are found to be not independent, while the system may remain stable. The closed-loop transfer function is also derived, which shows lower bandwidth than the designed value in the frequency domain. The analysis is further carried out with various motor speeds, control bandwidth as well as the load torque. Time-domain simulation results verify the analytical model and prediction given in the paper.
机译:用于牵引驱动应用的永磁体(PM)电动机通常需要宽速度范围操作,其中一旦达到逆变器电压限制,就采用磁通量弱化控制。由逆变器电压限制(电压圆)约束,由于缺少电压裕度,电流控制回路可以变为开环,并且不能有效地相对于参考有效地控制电流。另外,尽管施加了交叉耦合补偿,但是对D轴和Q轴电流的控制将相互影响。本文介绍了一个分析模型,用于描述上述问题,并试图预测磁通弱区中的电流控制回路性能。通过分析线性化电流环模型的状态矩阵的特征值,发现D轴和Q轴电流控制不是独立的,而系统可能保持稳定。还导出闭环传输功能,其显示比频域中的设计值更低的带宽。通过各种电动机速度,控制带宽以及负载扭矩进一步进行分析。时域仿真结果验证了纸张中给出的分析模型和预测。

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