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System design and control strategy of the vehicles using hydrogen energy

机译:氢能车辆的系统设计与控制策略

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This paper presented a system design review of fuel cell hybrid vehicle. Fuel supply, hydrogen storage, DC/DC converters, fuel cell system and fuel cell hybrid electric vehicle configurations were also reviewed. We explained the difference of fuel supply requirement between hydrogen vehicle and conventional vehicles. Three different types of hydrogen storage system for fuel supply are briefly introduced: high pressure, liquid storage and metal oxides storage. Considering of the potential risk of explosion, a security hydrogen storage system is designed to restrict gas pressure in the safe range. Due to the poor dynamic performance of fuel cells, DC/DC converters were added in hybrid vehicle system to improve response to the changes of power demand. Requirements that in order to select a suitable DC/DC converter for fuel-cell vehicles design were listed. We also discussed three different configurations of fuel-cell hybrid vehicles: "FC + B", "FC + C", and "FC + B + C", describing both disadvantages and advantages. "FC + B + C" structure has a better performance among three structures because it could provide or absorb peak current during acceleration and emergency braking. Finally, the energy management strategies of fuel cell and were proposed and the automotive energy power requirement of an application example was calculated.
机译:本文提出了燃料电池混合动力汽车的系统设计综述。还审查了燃料供应,氢存储,DC / DC转换器,燃料电池系统和燃料电池混合动力电动汽车配置。我们解释了氢能汽车与传统汽车之间的燃料供应需求差异。简要介绍了三种用于燃料供应的氢气存储系统:高压,液体存储和金属氧化物存储。考虑到爆炸的潜在风险,设计了安全的氢气存储系统,以将气体压力限制在安全范围内。由于燃料电池的动态性能较差,因此在混合动力汽车系统中添加了DC / DC转换器,以改善对功率需求变化的响应。列出了为燃料电池车设计选择合适的DC / DC转换器的要求。我们还讨论了燃料电池混合动力汽车的三种不同配置:“ FC + B”,“ FC + C”和“ FC + B + C”,同时描述了缺点和优点。 “ FC + B + C”结构在三种结构中具有更好的性能,因为它可以在加速和紧急制动期间提供或吸收峰值电流。最后,提出了燃料电池的能源管理策略,并计算了一个应用实例的汽车能源需求。

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