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Exergoeconomic optimization of coaxial tube evaporators for cooling of high pressure gaseous hydrogen during vehicle fuelling

机译:用于在车辆加油期间冷却高压气态氢的同轴管式蒸发器的经济优化

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摘要

Gaseous hydrogen as an automotive fuel is reaching the point of commercial introduction. Development of hydrogen fuelling stations considering an acceptable fuelling time by cooling the hydrogen to -40 C has started. This paper presents a design study of coaxial tube ammonia evaporators for three different concepts of hydrogen cooling, one onestage and two two-stage processes. An exergoeconomic optimization is imposed to all three concepts to minimize the total cost. A numerical heat transfer model is developed in Engineer Equation Solver, using heat transfer and pressure drop correlations from the open literature. With this model the optimal choice of tube sizes and circuit numbers are found for all three concepts. The results show that cooling with a two-stage evaporator after the pressure eduction valve yields the lowest total cost, 45 % lower than the highest, which is with a one-stage evaporator. The main contribution to the total cost was the cost associated with exergy destruction, the capital investment cost contributed with 5-14 %. The main contribution to the exergy destruction was found to be thermally driven. The pressure driven exergy destruction accounted for 3-9 %.
机译:气态氢作为汽车燃料已达到商业推广的目的。考虑到可以通过将氢气冷却至-40 C的可接受的加油时间来开始加氢站的开发。本文介绍了同轴管氨蒸发器的设计研究,该蒸发器用于三种不同的氢冷却概念,一个阶段和两个两个阶段。对这三个概念都进行了能效经济优化,以最大程度地降低总成本。在工程师方程求解器中,使用公开文献中的传热和压降相关性开发了一个数值传热模型。使用此模型,可以找到所有三个概念的最佳管尺寸和电路编号选择。结果表明,在减压阀之后使用两级蒸发器进行冷却产生的总成本最低,比使用单级蒸发器的最高成本低45%。总成本的主要贡献是与火用破坏相关的成本,资本投资成本占5-14%。发现对火用破坏的主要贡献是由热驱动的。压力驱动的火用破坏占3-9%。

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