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Microstructural refinement using ball-milling and spark-plasma sintering of MgH2 based materials for hydrogen storage

机译:使用球磨和火花等离子体烧结基于MgH2的材料进行储氢的显微组织细化

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摘要

In this work, a powder metallurgy procedure for the preparation of bulk hydrogen storage alloys based on MgH2 is presented. To meet the requirements of high specific surface area, high porosity and microstructural stability, all desirable features for this sort of material, a powder mixture with the following composition MgH2-15Nb-2B-1C has been ball-milled to reduce down to a few nanometers the average crystallite size of the main components. Another effect of milling, conducted under a static air atmosphere, was the in situ formation of a limited (5% approx.) amount of MgO, that, as shown by recent literature studies, may beneficially influence both the microstructural stability of the hydride alloy and the kinetics of adsorption and desorption of hydrogen. The powder was subsequently consolidated by spark plasma sintering, a process that, thanks to the limited working temperature and pressure, should not change to a significant extent the nanostructure of the ball-milled powder. The stability against recrystallisation of the consolidated specimens was verified by a number of heating and cooling cycles, up to 100, simulating the temperature conditions involved with the adsorption-desorption cycles. At the end, the crystallite size of the Mg-hydride phase was still in the nanometric range, although an unwanted oxidation, due to air contamination of the furnace atmosphere, reduced significantly the content of the hydrogen storing phase.
机译:在这项工作中,提出了一种粉末冶金工艺,用于制备基于MgH2的块状储氢合金。为了满足高比表面积,高孔隙率和微结构稳定性的要求,此类材料的所有理想功能,已对具有以下成分MgH2-15Nb-2B-1C的粉末混合物进行了球磨,以减少至几纳米主要成分的平均微晶尺寸。在静态空气气氛下进行研磨的另一种作用是原位形成有限量(约5%)的MgO,如最近的文献研究所示,这可能有利地影响氢化物合金的微观结构稳定性以及氢的吸附和解吸动力学。粉末随后通过火花等离子体烧结进行固结,由于有限的工作温度和压力,该过程不应在很大程度上改变球磨粉末的纳米结构。模拟了与吸附-解吸循环有关的温度条件,通过多达100次的加热和冷却循环,验证了固结试样抗再结晶的稳定性。最后,Mg-氢化物相的微晶尺寸仍在纳米范围内,尽管由于炉内空气的空气污染而引起的不希望的氧化显着降低了储氢相的含量。

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