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首页> 外文期刊>International journal of hydrogen energy >Fuel processor-battery-fuel cell hybrid drivetrain for extended range operation of passenger vehicles
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Fuel processor-battery-fuel cell hybrid drivetrain for extended range operation of passenger vehicles

机译:用于乘用车大范围操作的燃料处理器-电池-燃料电池混合动力总成

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Power required to run auxiliary systems on a passenger car, such as those for air conditioning and advanced vehicle control, reduces the driving range of a vehicle equipped with a hybrid drive train. Under practical driving conditions, a significant amount of additional energy is required at low power levels compared to the rated power of the drive unit. In the present study, we consider a fuel cell-battery drive train augmented by an on-board fuel (ethanol) processor to provide the motoring power requirements of a car. Using systematic driving cycle simulations that take account of power-to-weight, energy-to-weight and power-to-efficiency factors of on-board power sources under simulated load conditions, we show that a combination of steadily-operated compact ethanol reformer, a low-power battery continuously charged by excess reformer capacity and a high-power fuel cell powered by conservatively-used hydrogen from cylinder can increase the range of hybrid fuel cell drivetrains to about 750 km. Although the overall energy consumption of the three-way hybrid is more than that of fuel cell-battery hybrid, lesser use of stored hydrogen improves the fuel economy of the hybrid drivetrain. While the system complexity is increased, long-range distressed mode operation becomes feasible with the added fuel processor. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在乘用车上运行辅助系统所需的功率,例如用于空调和高级车辆控制的辅助系统,会减小配备有混合动力传动系统的车辆的行驶范围。在实际驾驶条件下,与驱动单元的额定功率相比,在低功率水平下需要大量的额外能量。在本研究中,我们考虑了一种燃料电池-电池传动系统,该系统通过车载燃料(乙醇)处理器得到了增强,可以满足汽车的动力需求。使用在模拟负载条件下考虑车载电源的功率-重量,能量-重量和功率-效率因素的系统驾驶周期模拟,我们证明了稳定运行的紧凑型乙醇重整炉的组合,通过重整器容量过度充电的低功率电池和由汽缸保守使用的氢气驱动的高功率燃料电池可将混合燃料电池的传动系统范围扩大至约750公里。尽管三向混合动力汽车的总能耗比燃料电池-电池混合动力汽车的总能耗高,但是较少使用存储的氢可以提高混合动力系统的燃油经济性。随着系统复杂性的增加,使用增加的燃料处理器,远程故障模式操作变得可行。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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