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A Novel Optimal Current Trajectory Control Strategy of IPMSM Considering the Cross Saturation Effects

机译:考虑交叉饱和效应的IPMSM最优电流轨迹控制策略

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Abstract : The nonlinearity and uncertain variation of machine parameters are always caused by cross coupling and magnetic saturation effects, which are easily neglected in the conventional control strategy. In this paper, a current trajectory control strategy (CTCS) is proposed to take the cross coupling and magnetic saturation effects into account under voltage and current constraints. It can be considered as a calculating method considering parameter variation and separating among each iteration step which treats the calculated result of the former step as the initial value of the next step. At first, the torque command is translated into the current reference. Then, the increments between the target value and real value of the torque and the voltage are respectively calculated, which are subsequently converted into the current modification vector in di d , di q framework for further analysis. In order to take the influence caused by cross coupling and magnetic saturation effects on the CTCS into consideration, self and mutual inductances are analyzed by finite element analysis (FEA). The results of the simulation and experiment show that the rapid response and robustness on reference speed variation could be achieved by employing the proposed CTCS, and the seamless switching between the constant torque and flux-weakening operation can also be realized.
机译:摘要:电机参数的非线性和不确定性变化始终是由交叉耦合和磁饱和效应引起的,而在传统的控制策略中则容易被忽略。在本文中,提出了一种电流轨迹控制策略(CTCS),以考虑在电压和电流约束下的交叉耦合和磁饱和效应。可以认为是考虑参数变化并在每个迭代步骤之间进行分离的计算方法,该迭代方法将前一步骤的计算结果视为下一步骤的初始值。首先,将扭矩命令转换为当前参考值。然后,分别计算转矩和电压的目标值与实际值之间的增量,然后将其转换为di d,di q框架中的电流修正矢量,以进行进一步分析。为了考虑交叉耦合和磁饱和效应对CTCS的影响,通过有限元分析(FEA)分析了自感和互感。仿真和实验结果表明,采用本文提出的CTCS可以实现对参考速度变化的快速响应和鲁棒性,并且还可以实现恒转矩与弱磁通之间的无缝切换。

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