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Numerical modelling of a PEFC powertrain system controlled by a hybrid strategy for rail urban transport

机译:由混合策略控制的城市轨道交通PEFC动力总成系统的数值模型

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This paper presents a Proton Exchange Membrane Fuel Cell (PEMFC) system model for locomotives, implemented ad hoc in MATLAB-Simulink environment for a standard drive cycle; the system is hybrid and the energy store system (ESS) is composed of battery and supercapacitor (SC). The PEMFC is the primary energy source of the hybrid locomotive; it supplies the total energy demand. A battery supplies the additional energy demand in acceleration and the SC delivers the power to fill the peaks. Moreover, a regenerative brake recuperates part of the energy lost in deceleration and stores it in the ESS. The hybrid locomotive is controlled by a hybrid strategy, fit for the purpose, composed of Fuzzy Logic Control and Equivalent Consumption Minimization Strategy; the PEMFC power is obtained through an optimization problem and the other variables are calculated by means of IF-THEN rules in order to achieve best results from each energy source, high efficiency and low hydrogen consumption. The simulation results confirm the good response of the hybrid system model: the FC system achieves efficiency of around 50% with a hydrogen consumption of 1.3 kg; the battery State of Charge (SOC) is kept between 60% and 75% and the SC SOC between 30% and 90%.
机译:本文介绍了一种用于机车的质子交换膜燃料电池(PEMFC)系统模型,该模型是在MATLAB-Simulink环境中以标准驱动周期临时实现的;该系统是混合动力系统,储能系统(ESS)由电池和超级电容器(SC)组成。 PEMFC是混合动力机车的主要能源。它满足了总的能源需求。电池可提供额外的加速能量需求,而SC则可提供能量以填补峰值。此外,再生制动器可以使减速过程中损失的部分能量恢复能量,并将其存储在ESS中。混合机车由适合目的的混合策略控制,由模糊逻辑控制和等效消耗最小化策略组成; PEMFC功率是通过优化问题获得的,而其他变量则通过IF-THEN规则进行计算,以便从每种能源,高效和低氢消耗中获得最佳结果。仿真结果证实了混合动力系统模型的良好响应:FC系统实现了约50%的效率,氢消耗为1.3 kg。电池充电状态(SOC)保持在60%至75%之间,SC SOC保持在30%至90%之间。

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