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首页> 外文期刊>Transportation Electrification, IEEE Transactions on >Improved Voltage Boundary With Model-Based Control Algorithm for Increased Torque in the Field Weakening Region of Induction Machines
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Improved Voltage Boundary With Model-Based Control Algorithm for Increased Torque in the Field Weakening Region of Induction Machines

机译:改进基于模型的电压边界控制算法,用于增加电机弱化区域的扭矩

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At high speed, electric vehicles (EVs) have limited torque when powered by an induction machine (IM). In IM, the high-speed region is called field weakening, and the region is known for torque limitation. This article proposes a control method that increases the torque without applying discontinuous-modulation techniques, which is commonly used. A bespoke model-based voltage control method has been developed, which enables reaching the hexagonal voltage reference trajectory for the field weakening region. So far, all model-based control methods are constrained by the inscribed voltage circle, which lies within the hexagonal voltage boundary. This restriction limits the available inverter output voltage across the motor windings, which, in turn, restricts the output torque of the drive. To achieve the hexagonal voltage trajectory, this article introduces a new calculation of the d-axis current for the entire speed range in the field weakening region. This calculation is based on the hexagonal voltage boundary equations and the stator voltage vector position. This generates a new reference d-axis current that minimizes the difference between the hexagonal voltage boundary and its inscribed voltage circle. As a result, the proposed d-axis current maximizes the output torque and output power in the field weakening region. The proposed method is presented analytically. Simulation and experimentally validated results are presented to confirm its feasibility and effectiveness.
机译:在高速时,电动车辆(EVS)在由感应机(IM)供电时具有有限的扭矩。在IM中,高速区域称为现场弱化,并且该区域已知用于扭矩限制。本文提出了一种控制方法,该控制方法增加扭矩而不施加不连续调制技术,这是常用的。已经开发了一种基于定制的基于模型的电压控制方法,这使得能够达到现场弱化区域的六边形电压参考轨迹。到目前为止,所有基于模型的控制方法受到铭刻电压圆的约束,它位于六边形电压边界内。该限制限制了电机绕组上的可用逆变器输出电压,这反过来限制了驱动器的输出扭矩。为了实现六边形电压轨迹,本文介绍了在现场弱化区域中的整个速度范围的D轴电流的新计算。该计算基于六边形电压边界方程和定子电压矢量位置。这产生了一种新的参考D轴电流,最小化六边形电压边界与其刻录电压圆之间的差异。结果,所提出的D轴电流最大化现场弱化区域中的输出扭矩和输出功率。该方法分析呈现。提出了模拟和实验验证的结果,以确认其可行性和有效性。

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