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Suppression Research Regarding Low-Frequency Oscillation in the Vehicle-Grid Coupling System Using Model-Based Predictive Current Control

机译:基于模型的预测电流控制的车辆耦合系统低频振荡的抑制研究

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摘要

Recently, low-frequency oscillation (LFO) has occurred many times in high-speed railways and has led to traction blockades. Some of the literature has found that the stability of the vehicle-grid coupling system could be improved by optimizing the control strategy of the traction line-side converter (LSC) to some extent. In this paper, a model-based predictive current control (MBPCC) approach based on continuous control set in the dq reference frame for the traction LSC for electric multiple units (EMUs) is proposed. First, the mathematical predictive model of one traction LSC is deduced by discretizing the state equation on the alternating current (AC) side. Then, the optimal control variables are calculated by solving the performance function, which involves the difference between the predicted and reference value of the current, as well as the variations of the control voltage. Finally, combined with bipolar sinusoidal pulse width modulation (SPWM), the whole control algorithm based on MBPCC is formed. The simulation models of EMUs’ dual traction LSCs are built in MATLAB/SIMULINK to verify the superior dynamic and static performance, by comparing them with traditional transient direct current control (TDCC). A whole dSPACE semi-physical platform is established to demonstrate the feasibility and effectiveness of MBPCC in real applications. In addition, the simulations of multi-EMUs accessed in the vehicle-grid coupling system are carried out to verify the suppressing effect on LFO. Finally, to find the impact of external parameters (the equivalent leakage inductance of vehicle transformer, the distance to the power supply, and load resistance) on MBPCC’s performance, the sensitivity analysis of these parameters is performed. Results indicate that these three parameters have a tiny impact on the proposed method but a significant influence on the performance of TDCC. Both oscillation pattern and oscillation peak under TDCC can be easily influenced when these parameters change.
机译:最近,低频振荡(LFO)的高速铁路已多次发生,并导致牵引封锁。一些文献中已经发现,在车辆电网耦合系统的稳定性可以通过优化牵引线路侧转换器(LSC)在一定程度上的控制策略来改善。在本文中,基于在用于牵引LSC为电联车(电动车组)dq参考帧连续控制集的基于模型的预测电流控制(MBPCC)的方法,提出了首先,一个牵引LSC的数学预测模型是通过离散的交变电流(AC)侧的状态方程推导。然后,最佳控制变量通过求解性能函数,这涉及电流的预测和基准值,以及所述控制电压的变化量之间的差计算。最后,双极正弦脉冲宽度调制(SPWM)合并时,形成基于MBPCC整个控制算法。动车组双牵引的LSCs的仿真模型是建立在MATLAB / Simulink中验证了优异的动态和静态性能,通过与传统的瞬态直流控制(TDCC)比较。整整dSPACE的半实物平台建立后证明在实际应用中MBPCC的可行性和有效性。此外,多动车组的模拟中进行了验证对LFO的抑制效果的车辆电网耦合系统访问。最后,发现外部参数的影响上MBPCC的性能(车用变压器,到电源的距离,以及负载电阻的等效漏感),则执行这些参数的敏感性分析。结果表明,这三个参数对所提出的方法一个微小的影响,但对TDCC的性能有显著的影响。 TDCC下两个振荡模式振荡的峰值可以在这些参数的变化很容易改变。

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    Yaqi Wang; Zhigang Liu;

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  • 年度 2018
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  • 原文格式 PDF
  • 正文语种 eng
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