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玻璃形成合金AlNiYLa的离心雾化

Centrifugal Atomization of Glass-Forming Alloy AlNiYLa.

作者信息

Pijuan Jordi, Cegarra Sasha Alejandra, Dosta Sergi, Albaladejo-Fuentes Vicente, Riera María Dolores

机构信息

Eurecat, Centre Tecnològic de Catalunya, Unit of Metallic and Ceramic Materials, Plaça de la Ciència 2, 08243 Manresa, Spain.

Departament de Ciència dels Materials i Química Física, Universitat de Barcelona, Martí i Franqués 1, 08028 Barcelona, Spain.

出版信息

Materials (Basel). 2022 Nov 17;15(22):8159. doi: 10.3390/ma15228159.

Abstract

Centrifugal atomization is a rapid solidification technique for producing metal powders. However, its wide application has been limited to the production of common metal powders and their corresponding alloys. Therefore, there is a lack of research on the production of novel materials such as metallic glasses using this technology. In this paper, aluminum-based glassy powders (AlNiYLa) were produced by centrifugal atomization. The effects of disk speed, atomization gas, and particle size on the cooling rate and the final microstructure of the resulting powder were investigated. The powders were characterized using SEM and XRD, and the amorphous fractions of the atomized powder samples were quantified through DSC analysis. A theoretical model was developed to evaluate the thermal evolution of the atomized droplets and to calculate their cooling rate. The average cooling rate experienced by the centrifugally atomized powder was calculated to be approximately 7 × 10 Ks for particle sizes of 32.5 μm atomized at 40,000 rpm in a helium atmosphere. Amorphous fractions from 60% to 70% were obtained in particles with sizes of up to 125 μm in the most favorable atomization conditions.

摘要

离心雾化是一种用于生产金属粉末的快速凝固技术。然而,其广泛应用仅限于生产普通金属粉末及其相应合金。因此,缺乏关于使用该技术生产诸如金属玻璃等新型材料的研究。本文通过离心雾化制备了铝基玻璃粉末(AlNiYLa)。研究了圆盘速度、雾化气体和粒径对所得粉末冷却速率和最终微观结构的影响。使用扫描电子显微镜(SEM)和X射线衍射仪(XRD)对粉末进行表征,并通过差示扫描量热法(DSC)分析对雾化粉末样品的非晶态分数进行定量。建立了一个理论模型来评估雾化液滴的热演化并计算其冷却速率。在氦气气氛中,以40000转/分钟的转速雾化粒径为32.5μm的粉末时,离心雾化粉末所经历的平均冷却速率计算约为7×10⁴Ks⁻¹。在最有利的雾化条件下,粒径达125μm的颗粒中非晶态分数可达60%至70%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de15/9697833/43f333235bfb/materials-15-08159-g001.jpg

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