Energy-Management Method to Reduce the Capacity of Lithium-Ion Batteries in Hybrid-Voltage-Source Three-Level Inverter for DC-Electrified Railway Vehicles

IF 7.9 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Open Journal of Industry Applications Pub Date : 2022-03-22 DOI:10.1109/OJIA.2022.3160756
Tadashi Mizobuchi;Keiichiro Kondo;Yosuke Dairaku;Takeshi Shinomiya;Katsumi Ishikawa
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引用次数: 4

Abstract

The hybrid-voltage-source three-level inverter is a traction circuit system aimed at realizing energy savings with lithium-ion batteries for direct-current-electrified railway vehicles. However, this system has the limitation of being unable to freely control the power flow of the batteries owing to the pulse width modulation. However, because this system has batteries, energy management is required for the batteries. Therefore, it is necessary to propose an energy-management method that achieves the required energy-saving effect while considering the constraints of the battery power control. In this paper, a management method is proposed to control the power flow of the batteries by determining the pulse mode of the inverter and the modulation wave offset based on the state of the charge and inverter frequency. In a 0.75-kW class mini-model verification, the effectiveness of the proposed energy-management method is then confirmed based on the state of the charge, inverter frequency, offset, and battery power. Subsequently, we evaluate the energy-saving effect of this hybrid system using a numerical simulation while considering an actual railway vehicle. In addition, the optimal capacity of the batteries is investigated. As a result, the best energy-saving effect is obtained when two of the assumed batteries are connected in series and three in parallel, and the power consumption is reduced by approximately 21%.
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降低直流电气化铁道车辆混合电压源三电平逆变器中锂离子电池容量的能量管理方法
混合电压源三电平逆变器是一种用于直流电气化铁路车辆的牵引电路系统,旨在利用锂离子电池实现节能。然而,由于脉冲宽度调制,该系统具有不能自由控制电池的功率流的限制。然而,由于该系统具有电池,因此需要对电池进行能量管理。因此,有必要提出一种在考虑电池功率控制约束的同时达到所需节能效果的能量管理方法。本文提出了一种管理方法,通过根据充电状态和逆变器频率确定逆变器的脉冲模式和调制波偏移来控制电池的功率流。在0.75-kW级小型模型验证中,基于充电状态、逆变器频率、偏移和电池功率来确认所提出的能量管理方法的有效性。随后,我们在考虑实际铁路车辆的情况下,通过数值模拟评估了该混合动力系统的节能效果。此外,还对电池的最佳容量进行了研究。结果,当假设的电池中的两个串联连接,三个并联连接时,获得了最佳的节能效果,并且功耗降低了约21%。
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