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首页> 外文期刊>International journal of hydrogen energy >Numerical investigation of H-2 absorption in an adiabatic high-temperature metal hydride reactor based on thermochemical heat storage: MgH2 and Mg(OH)(2) as reference materials
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Numerical investigation of H-2 absorption in an adiabatic high-temperature metal hydride reactor based on thermochemical heat storage: MgH2 and Mg(OH)(2) as reference materials

机译:基于热化学储热的绝热高温金属氢化物反应器中H-2吸收的数值研究:MgH2和Mg(OH)(2)作为参考材料

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摘要

A two-dimensional mathematical model to predict the thermal performance of an adiabatic hydrogen storage system based on the combination of magnesium hydride and magnesium hydroxide materials has been developed. A simple geometry consisting of two coaxial cylinders filled with the hydrogen and thermochemical heat storage materials was considered. The main objective was to gain a better knowledge on the thermal interaction between the two storage media, and to determine the dependence of the hydrogen absorption time on the geometric characteristics of the reactor as well as the operation conditions and the thermophysical properties of the selected materials. The dimensions of the two compartments where the two materials are filled were chosen based on the results of a preliminary analytical study in order to compare the absorption times obtained analytically and numerically. The numerical results have shown that the hydrogen absorption process can be completed in a shorter interval of time than analytically as a result of the larger temperature gradient between the magnesium hydride and magnesium hydroxide beds. This was mainly due to variation of temperature in the thermochemical heat storage material during the more realistic dehydration reaction in the numerical solution. Larger temperature gradients, thus a faster hydrogen absorption process can also be achieved by increasing the hydrogen absorption pressure. Moreover, it was found that the increase of the thermal conductivity of the magnesium hydroxide material is crucial for a further improvement of the performance of the MgH2 Mg(OH)(2) combination reactor. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:建立了基于氢化镁和氢氧化镁材料组合的预测绝热氢存储系统热性能的二维数学模型。考虑了一个简单的几何形状,该几何形状由填充有氢气和热化学储热材料的两个同轴圆柱体组成。主要目的是对两种存储介质之间的热相互作用有更好的了解,并确定氢吸收时间对反应器几何特性以及所选材料的运行条件和热物理性质的依赖性。 。根据初步分析研究的结果选择填充两种材料的两个隔室的尺寸,以便比较通过分析和数值获得的吸收时间。数值结果表明,由于氢化镁和氢氧化镁床之间的温度梯度较大,因此与分析相比,可以在更短的时间间隔内完成氢吸收过程。这主要是由于在数值解中更实际的脱水反应过程中,热化学储热材料中的温度变化。较大的温度梯度,因此也可以通过增加氢吸收压力来实现更快的氢吸收过程。此外,发现氢氧化镁材料的导热率的提高对于进一步提高MgH 2 Mg(OH)(2)组合反应器的性能至关重要。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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