【2h】

New Aspects of MgH

机译:MGH的新方面

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摘要

Magnesium hydride, despite the decomposition temperature being incompatible with the operating temperature of a typical PEM cell, is still considered a prospective material for hydrogen storage. Hence, this paper presents new aspects of the influence of milling time on the structural changes and temperature of MgH2 decomposition, with particular emphasis on the changes taking place in the first few seconds of the milling process. This paper presents qualitative and quantitative changes in the powder particle morphology determined using scanning electron microscopy (SEM) and infrared particle size analysis (IPS) systems. The crystallographic structure of the powders in the initial state and after mechanical milling was characterized by X-ray diffraction. The decomposition temperature and activation energy were determined by the differential scanning calorimetry (DSC). Changes in the activation energy and decomposition temperature were observed after only 1–2 min of the milling process. Two basic stages of the milling process were distinguished that impacted the MgH2 decomposition temperature, i.e., mechanical activation and a nanostructuring process. The activation was associated with the initial stage of particle size reduction and an increase in the fraction of fresh chemically active powder particle surfaces. On the other hand, the nanostructuring process was related to an additional decrease in the MgH2 decomposition temperature.
机译:氢化镁,尽管与典型PEM细胞的操作温度不相容的分解温度,仍然认为储氢的前瞻性材料。因此,本文提出了铣削时间对MGH2分解结构变化和温度的影响的新方面,特别强调了铣削过程的前几秒钟中发生的变化。本文呈现了使用扫描电子显微镜(SEM)和红外粒度分析(IPS)系统测定的粉末粒子形态的定性和定量变化。通过X射线衍射表征初始状态和机械研磨后粉末中的粉末的晶体结构。通过差示扫描量热法(DSC)确定分解温度和激活能量。在铣削过程中仅1-2分钟后观察到活化能和分解温度的变化。区分铣削过程的两个基本阶段,影响了MGH2分解温度,即机械活化和纳米结构化过程。活化与粒度减小的初始阶段相关,颗粒尺寸的初始阶段和新的化学活性粉末颗粒表面的级分的增加。另一方面,纳米结构过程与MGH2分解温度的额外降低有关。

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