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Theoretical analysis and optimum integration strategy of the PEM fuel cell and internal combustion engine hybrid system for vehicle applications

机译:PEM燃料电池与内燃机混合动力系统在车用中的理论分析及优化集成策略

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摘要

The hybrid system comprised by a proton exchange membrane (PEM) fuel cell and internal combustion engine shows many advantages for vehicle applications. The hybrid system can recover the un-reacted hydrogen from fuel cell, utilize heat in the combustion product from cylinder, or combine the advantages of both. Based on thermodynamics and electrochemistry, an indirect integration system of the PEM fuel cell and Otto cycle is established for vehicle applications. The irreversibilities such as the entropy production and overpotentials in the fuel cell, the finite-rate heat transfer between the air in the Otto cycle and combustion chamber wall, the irreversible compression, expansion, and regeneration processes in the Otto cycle are considered. The excellence of the PEM fuel cell compared with internal combustion engine is shown in terms of energy conversion efficiency. When the vehicle is speeding or launching suddenly, not only the flow rate of natural gas into the hybrid system should be increased but also a specific coupling mode between two powertrain systems should be found. Copyright (c) 2015 John Wiley Sons, Ltd.
机译:由质子交换膜 (PEM) 燃料电池和内燃机组成的混合动力系统在车辆应用中显示出许多优势。混合动力系统可以从燃料电池中回收未反应的氢气,利用气缸燃烧产物中的热量,或结合两者的优点。基于热力学和电化学,建立了PEM燃料电池和奥托循环的间接集成系统。考虑了燃料电池中的熵产生和过电位、奥托循环中空气与燃烧室壁之间的有限速率传热、奥托循环中不可逆的压缩、膨胀和再生过程等不可逆性。与内燃机相比,PEM燃料电池的卓越表现在能量转换效率方面。当车辆超速或突然起步时,不仅要增加进入混合动力系统的天然气流量,还要在两个动力总成系统之间找到特定的耦合模式。版权所有 (c) 2015 John Wiley & Sons, Ltd.

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