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The effect of thermal pre-treatment of titanium hydride (TiH_2) powder in argon condition

机译:热预处理在氩气条件下氢化钛(TiH_2)粉末的影响

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Titanium hydride (TiH_2) powders are used to enhance the foaming process in the formation of a highly porous metallic material with a cellular structure. But, the low temperature of hydrogen release is one of its problems. The present study, different thermal pre-treatment temperatures were employed to investigate the decomposition behavior of TiH_2 to retard or delay a hydrogen gas release process during foaming. As a foaming agent, TiH_2 was subjected to various heat treatments prior at 450 and 500°C during 2 hours in argon condition. To study the formation mechanism, the thermal behavior of titanium hydride and hydrogen release are investigated by thermogravimetric analysis (TGA) and differential thermal analysis (DTA). The morphology of pre-treated titanium hydride powders were examined using Scanning Electron Microscope (SEM) while unsure mapping and elemental composition of the pre-treated powders processed by Energy Dispersive Spectroscopy (EDS). To study the phase formation was characterized by X-ray diffraction analysis (XRD). In accordance with the results, an increase in pre-treatment temperature of TiH_2 to higher degrees are changing the process of releasing hydrogen from titanium hydride powder. DTA/TGA results showed that thermal pre-treatment TiH_2 at 450°C, released the hydrogen gas at 560°C in heat treatment when foaming process. Meanwhile, thermal pre-treatment in TiH_2 at 500°C, released the hydrogen gas at 670°C when foaming process. There is plenty of direct evidence for the existence of oxide layers that showed by EDS analysis obtained in SEM. As oxygen is a light element and qualitative proof shows that the higher pre-treatment temperature produces more and thicker oxygen layers on the surface of the TiH_2 powder particles. It might the thickness of oxide layer are different from different pre-treatment temperatures, which leading to the differences in the decomposition temperature. But from SEM result that oxidation of the powder does not change the powder morphology. The oxidation process also confirmed by XRD result, which showed higher thermal pre-treatment TiH_2, more oxide higher peak is formed. The oxide layer of TiH_2 particles is responsible for the observed shift in decomposition temperature and can prepare the stable foam that stabilizes forming of cell walls and avoid their collapse at higher temperatures.
机译:氢化钛(TiH_2)粉末用于增强具有细胞结构的高度多孔金属材料的发泡过程。但是,氢释放的低温是其问题之一。本研究采用不同的热预处理温度来研究TIH_2的分解行为延迟或延迟发泡过程中的氢气释放过程。作为发泡剂,在2小时内在氩气条件下在450和500℃之前进行TiH_2的各种热处理。为了研究形成机制,通过热重分析(TGA)和差分热分析(DTA)研究了氢化钛和氢释放的热行为。使用扫描电子显微镜(SEM)检查预处理的氢化物粉末的形态,而通过能量分散光谱(EDS)处理预处理的粉末的映射和元素组成。为了研究X射线衍射分析(XRD)表征相形成。根据结果​​,TiH_2至较高程度的预处理温度的增加正在改变释放氢化钛粉末的过程。 DTA / TGA结果表明,在450°C时,热预处理TiH_2在发泡过程时在热处理中在560℃下释放氢气。同时,在500℃下在TiH_2的热预处理,在发泡过程时在670℃下释放氢气。有大量的直接证据才能存在于SEM中获得的EDS分析的氧化物层。由于氧气是光元素和定性证据表明,较高的预处理温度在TIH_2粉末颗粒的表面上产生更多且较厚的氧层。它可能与不同的预处理温度不同,氧化物层的厚度不同,这导致分解温度的差异。但是从SEM结果中,粉末的氧化不会改变粉末形态。氧化过程还通过XRD结果证实,其显示出较高的热预处理TiH_2,形成更多的氧化物较高峰。 TiH_2颗粒的氧化物层负责分解温度的观察到的偏移,可以制备稳定细胞壁的稳定泡沫,并避免其在较高温度下塌陷。

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