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Considerations on the H-2 desorption process for a combination reactor based on metal and complex hydrides

机译:基于金属和复合氢化物的联合反应器的H-2解吸工艺的考虑

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Hydrogen storage systems based on the combination reactor concept are promising for application of future complex hydride materials with high storage capacities and low reaction kinetics at moderate operating temperatures. In such reactors, a fast reacting metal hydride is added to a complex hydride material in a separate compartment of the tank combining the advantages of the high storage capacity of the complex hydride with the high reaction rate of the metal hydride. In the present publication, three issues regarding the desorption performance of such a reactor are discussed based on analytical considerations and 1D simulations. First, it is studied whether the optimal reactor design based on a tubular geometry that has been previously determined for the absorption reaction also enables satisfying desorption performances. It can be concluded from the corresponding simulations that based on the properties of the present reference materials LaNi4.3Al0.4Mn0.7 and 2 LiNH2-1.1 MgH2-0.1LiBH(4)-3 wt.% ZrCoH3, the hydrogen desorption performance of the materials in this reaction geometry is good. Second, it is shown that besides the geometry of the reactor, also its module size is important, as it can be crucial for the thermal management during the desorption. A methodology was developed that allows to analytically determine a first estimate for the best minimum module size configuration - only based on the desorption rate of the basic material. This approach is confirmed by time dependent 1D simulations applying a validated model for the reference materials. Third, the influence of a realistic periodic desorption load on the performance of a combination reactor is studied. The results clearly show that since the addition of a MeH material enables much smaller module sizes, it is advantageous for the thermal management of complex hydride based reactors and increases their flexibility. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:基于组合反应器概念的氢存储系统有望在中等工作温度下应用具有高存储容量和低反应动力学的未来复杂氢化物材料。在这样的反应器中,将快速反应的金属氢化物添加到罐的单独隔室中的复合氢化物材料中,其结合了复合氢化物的高储存容量和金属氢化物的高反应速率的优点。在本公开中,基于分析考虑和一维模拟,讨论了关于这种反应器的解吸性能的三个问题。首先,研究了基于预先确定用于吸收反应的管状几何形状的最佳反应器设计是否还能满足解吸性能。从相应的模拟可以得出结论,基于本参考材料LaNi4.3Al0.4Mn0.7和2 LiNH2-1.1 MgH2-0.1LiBH(4)-3 wt。%ZrCoH3的性能,该材料的氢解吸性能材料在这种反应中的几何形状是好的。其次,表明除反应器的几何形状外,其模块尺寸也很重要,因为这对于解吸期间的热管理至关重要。开发了一种方法,该方法仅基于基础材料的解吸速率就可以分析确定最佳最小模块尺寸配置的第一估算值。这种方法通过与时间相关的一维模拟应用参考材料的验证模型得到了证实。第三,研究了实际的周期性解吸负荷对组合反应器性能的影响。结果清楚地表明,由于添加MeH材料可以实现更小的模块尺寸,因此对于复杂的基于氢化物的反应器的热管理是有利的,并增加了其灵活性。 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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