氢的生产和燃料电池汽车的加注

Rayan A. Najdi, Tarek G. Shaban, M. Mourad, S. Karaki
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引用次数: 6

摘要

本文建立了一个制氢燃料站模型,模拟了不同条件和需求下的制氢全过程。该模拟需要对四个主要组件进行建模:具有热模型的电化学制氢电池,电化学压缩和存储,以及最佳汽车加油。在电化学电池模型中,建立了PEM电解槽的等效电路,以计算一定氢气需求量所需的总电能。此外,还建立了温度对电解槽效率的影响模型,说明了电解过程中的能量交换过程和温度的升高或降低。此外,为了使电池保持在最佳运行状态,从而以最高效率运行,还开发了冷却系统。在用于燃料电池汽车之前,所产生的氢需要被压缩,因为它的体积密度很低。压缩是使用电化学压缩机进行的。强调了这种压缩机的优点,并将其运行与机械压缩机在效率和稳定性方面进行了比较。分析了压缩机内氢气反扩散问题,评价了反扩散对系统效率的影响;对不同类型、不同厚度的膜进行了模拟。最后,提出了一个自动加注站的程序,并考虑了它的各种控制措施,以保持有效的加注操作在油箱的安全限度内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrogen production and filling of fuel cell cars
This paper presents a model for a hydrogen production fuel station, which simulates the complete process of hydrogen production under different conditions and demands. This simulation entails the modeling of four main components: an electrochemical hydrogen production cell with a thermal model, electrochemical compression and storage, and optimal car fueling. In the electrochemical cell model, an equivalent circuit for the PEM electrolyzer is built to compute the total electric energy needed for a certain demand of hydrogen. Moreover, the effect of temperature on the efficiency of the electrolyzer is modeled and accounts for the energy exchange process and temperature increase or decrease during electrolysis. Furthermore, a cooling system was developed in order to maintain the cell at optimum operating conditions, and thus operate at maximum efficiency. The hydrogen produced needs to be compressed because of its low volumetric density before it can be used for fuel cell cars. The compression is carried out using an electrochemical compressor. The advantages of this compressor are highlighted and its operation is compared to that of a mechanical compressor regarding efficiency and stability. Furthermore, the issue of back hydrogen diffusion in the compressor is analyzed and its effect on the efficiency of the system assessed; this effect was modeled for different types of membranes of different thicknesses. Finally, a procedure is presented for an automated filling station, and its various control measures are considered in order to maintain an efficient filling operation within the safety limits of the tank.
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