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Heat transfer analysis of liquid piston compressor for hydrogen applications

机译:氢用液体活塞压缩机的传热分析

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A hydrogen compression technology using liquid as the compression piston is investigated from heat transfer point of view. A thermodynamic model, simulating a single compression stroke, is developed to investigate the heat transfer phenomena inside the compression chamber. The model is developed based on the mass and energy balance of the hydrogen, liquid, and the wall of the compression chamber at each time step and positional node with various compression ratios, to calculate the temperature distribution of the system. The amount of heat extracted from hydrogen, directly at the interface and through the walls, is investigated and compared with the adiabatic case. The results show that depending on heat transfer correlation, the hydrogen temperature reduces slightly between 0.2% and 0.4% compared to the adiabatic case, at 500 bar, due to the large wall resistance and small contact area at the interface. Moreover, the results of the sensitivity analysis illustrates that increasing the total heat transfer coefficients at the interface and the wall, together with compression time, play key roles in reducing the hydrogen temperature. Increasing the total heat transfer coefficient at the interface (10,000 times) or at the wall (200 times), leads to 22% or 33% reduction of hydrogen, compared to the adiabatic case, at 500 bar, during 3.5 s compression, respectively. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:从传热的角度研究了一种使用液体作为压缩活塞的氢压缩技术。建立了模拟单个压缩冲程的热力学模型,以研究压缩室内部的传热现象。基于每个时间步长的氢气,液体和压缩室壁以及具有不同压缩比的位置节点的质量和能量平衡来开发该模型,以计算系统的温度分布。直接从界面处和通过壁从氢中提取的热量进行了研究,并与绝热情况进行了比较。结果表明,由于传热相关性,与绝热情况相比,在500 bar时,氢气温度与绝热情况相比略有降低,介于0.2%和0.4%之间,这是由于界面电阻大且接触面积小。此外,敏感性分析的结果表明,增加界面和壁的总传热系数以及压缩时间在降低氢气温度方面起着关键作用。与绝热情况相比,在500巴,3.5 s压缩期间,增加界面(10,000倍)或壁(200倍)处的总传热系数会导致氢气减少22%或33%。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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