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首页> 外文期刊>International journal of hydrogen energy >Design and investigation of hydriding alloy based hydrogen storage reactor integrated with a pin fin tube heat exchanger
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Design and investigation of hydriding alloy based hydrogen storage reactor integrated with a pin fin tube heat exchanger

机译:销钉翅片管换热器的氢化合金基储氢反应器设计与研究

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The reaction between metal hydride (MH) and hydrogen gas generates substantial amount of heat. It must be removed rapidly to sustain the reaction in the metal hydride hydrogen storage reactor. Previous studies indicate that the performance of the reactor can be improved by inserting an efficient heat exchanger design inside the metal hydride bed. In the present study, a cylindrical shaped metal hydride system containing LaNi5, integrated with a finned tube heat exchanger assembly made of copper pin fins and tubes, is presented. A 3-D numerical model is formulated in COMSOL Multiphysics 4.4 to study the transient behavior of sorption process inside the reactor. Experimental data obtained from the literature is used to approve the legitimacy of the proposed model. Influence of various operating and geometric parameters on the total absorption time of the reactor has been investigated. It is found that hydrogen supply pressure is the most influencing factor to increase the absorption rate of hydrogen. Total absorption time of the reactor is found to be 636 s with maximum storage capacity of 1.4 wt% at the operating conditions of 15 bar H-2 gas supply pressure, heat transfer fluid temperature of 298 K and flow rate of 6.75 l/min. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:金属氢化物(MH)与氢气之间的反应会产生大量的热量。必须迅速将其除去以维持金属氢化物氢存储反应器中的反应。先前的研究表明,可以通过在金属氢化物床内插入高效的热交换器设计来提高反应器的性能。在本研究中,提出了一种包含LaNi5的圆柱形金属氢化物系统,该系统与由铜针状翅片和管制成的翅片管热交换器组件集成在一起。在COMSOL Multiphysics 4.4中建立了3-D数值模型,以研究反应器内部吸附过程的瞬态行为。从文献中获得的实验数据用于批准所提出模型的合法性。研究了各种操作和几何参数对反应器总吸收时间的影响。发现氢气供应压力是增加氢气吸收速率的最主要因素。在15 bar H-2供气压力,298 K传热流体温度和6.75 l / min的流量条件下,反应器的总吸收时间为636 s,最大存储容量为1.4 wt%。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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