单相直流电力机车牵引电机受控励磁变流器供电方案的选择

N. L. Mikhalchuk
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摘要

文章的重点是开发一种有效的设计和算法,用于根据恒定牵引力和功率的规律自动控制单相直流电力机车,而无需在电力电路中切换电气设备。为解决这一问题,使用了 MatLab、Simulink 和 SimPowerSystems 软件的电磁、机电和机械过程数学建模方法。磁化曲线的非线性以及牵引电机主极和附加极线圈涡流的影响都被考虑在内。仿真中使用了功率电路的结构和参数合成以及受控桥式 IGBT 转换器的控制算法。研究对象是一个电工综合体,包括一台 9840 千瓦的三层电力机车 3ES5K "Ermak"。根据研究结果,建议在电力机车的三个部分各使用一个带有两个可逆变流器的电力电路。这些变流器为四台 820 千瓦牵引电机供电,并为用于轴向牵引控制的可控桥式 IGBT 变流器分流磁场线圈提供一组电源。计算证实了牵引电机和励磁电流单独控制方案的适用性,确保了电力机车牵引力的平稳增长。所开发的轴向牵引控制算法确保了牵引力的平稳增长,并为电力机车车轮与轨道的耦合创造了最佳条件。这些解决方案可用于新型和现有电力机车的制造和现代化改造。
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Selection of power supply scheme for controlled excitation converters in traction electric motors of single-phase DC electric locomotives
The article focuses on the development of an effective design and algorithms for automatic control of singlephase DC electric locomotives according to the laws of constant traction force and power without switching electrical devices within power electric circuits. Methods of mathematical modelling for electromagnetic, electromechanical, and mechanical processes by MatLab, Simulink, and SimPowerSystems software were used to address this problem. The nonlinearities of the magnetisation curve were taken into account, along with the influence of eddy currents from the coils of the main and additional poles in traction motors. Structural and parametric synthesis of a power electrical circuit and control algorithms by controlled bridge IGBT converters were used in the simulation. The object of the research was an electrotechnical complex, including a 9840 kW three-stack electric locomotive 3ES5K “Ermak”. On the basis of the research results, it is recommended to use a power electrical circuit with two reversible converters for each of the three sections on the electric locomotive. These converters provide power to four 820 kW traction motors and a group power supply for controlled bridge IGBT converters shunting the field coils for axial traction control. The calculations confirmed the applicability of a scheme for individual control of traction electric motors and excitation currents, ensuring a smooth increase in the traction force of an electric locomotive. The developed algorithm of axial traction control ensures a smooth increase in this force and creates the optimal conditions for coupling the wheels of an electric locomotive with rails. These solutions can be used in the manufacture and modernisation of new and existing electric locomotives
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