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Cryo-adsorptive hydrogen storage on activated carbon. I: Thermodynamic analysis of adsorption vessels and comparison with liquid and compressed gas hydrogen storage

机译:在活性炭上的低温吸附氢存储。 I:吸附容器的热力学分析以及与液体和压缩气体储氢的比较

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This paper presents a thermodynamic analysis of cryo-adsorption vessels for hydrogen storage. The analysis is carried out with an unsteady lumped model and gives a global assessment of the behavior of the storage system during operation (discharge), dormancy and filling. The adsorbent used is superactivated carbon AX-21?. Cryogenic hydrogen storage, either by compression or adsorption, takes advantage of the effect of temperature on the storage density. In order to store 4.1 kg H_2 in 100 L, a pressure of 750 bar at 298 K is necessary, but only 150 bar at 77 K. The pressure is further reduced to 60 bar if the container is filled with pellets of activated carbon [7]. However, adsorption vessels are submitted to intrinsic thermal effects which considerably influence their dynamic behavior and due to which thermal management is required for smooth operation. In this analysis, among energy balances for filling and discharge processes, the influence of the intrinsic thermal effects during vessel operation is presented. Hydrogen losses during normal operation as well as during long periods of inactivity are also considered. The results are compared to those obtained in low-pressure and high-pressure insulated LH_2 and CH_2 tanks.
机译:本文介绍了用于储存氢的低温吸附容器的热力学分析。该分析是使用非定常集总模型进行的,可以对存储系统在运行(放电),休眠和填充期间的行为进行整体评估。所用的吸附剂是超活性炭AX-21α。通过压缩或吸附进行低温氢存储,可以利用温度对存储密度的影响。为了在100 L中存储4.1 kg H_2,在298 K时需要750 bar的压力,而在77 K时仅需要150 bar的压力。如果容器中充满活性炭颗粒[7],则压力会进一步降低到60 bar。 ]。然而,吸附容器受到固有的热效应,这极大地影响了它们的动态性能,并且因此必须进行热管理才能平稳运行。在此分析中,在填充和排放过程的能量平衡中,提出了容器运行过程中固有热效应的影响。还考虑了正常运行期间以及长时间不活动期间的氢气损失。将结果与在低压和高压绝热LH_2和CH_2储罐中获得的结果进行比较。

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