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Optimal vehicle control strategy of a fuel cell/battery hybrid city bus

机译:燃料电池混合动力城市客车的最优车辆控制策略

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In this article, an optimal vehicle control strategy based on a time-triggered controller area network (TTCAN) system for a polymer electrolyte membrane (PEM) fuel cellickel-metal hydride (Ni-MH) battery powered city bus is presented. Aiming at improving the fuel economy of the city bus, the control strategy comprises an equivalent consumption minimization strategy (ECMS) and a braking energy regeneration strategy (BERS). On the basis of the introduction of a battery equivalent hydrogen consumption model incorporating a charge-sustaining coefficient, an analytical solution to the equivalent consumption minimization problem is given. The proposed strategy has been applied in several city buses for the Beijing Olympic Games of 2008. Results of the "China city bus typical cycle" testing show that, the ECMS and the BERS lowered hydrogen consumption by 2.5% and 15.3% respectively, compared with a rule-based strategy. The BERS contributes much more than the ECMS to the fuel economy, because the fuel cell system does not leave much room for the optimal algorithm in improving the efficiency.
机译:在本文中,提出了一种基于时间触发控制器局域网(TTCAN)系统的最优车辆控制策略,该系统用于聚合物电解质膜(PEM)燃料电池/镍氢(Ni-MH)电池供电的城市公交车。为了改善城市公交车的燃油经济性,该控制策略包括等效消耗最小化策略(ECMS)和制动能量再生策略(BERS)。在引入包含电荷维持系数的电池等效氢消耗模型的基础上,给出了等效消耗最小化问题的解析解。拟议的策略已在2008年北京奥运会的几辆城市客车中应用。“中国城市客车典型循环”测试结果表明,与之相比,ECMS和BERS分别降低了2.5%和15.3%的氢消耗。基于规则的策略。 BERS对燃油经济性的贡献远超过ECMS,这是因为燃料电池系统在提高效率方面没有为优化算法留出太多空间。

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