Pressing and Sintering of Titanium Aluminide Powder after Ball Milling in Silane-Doped Atmosphere

IF 3.3 Q2 ENGINEERING, MANUFACTURING
Bernd-Arno Behrens, Kai Brunotte, Julius Peddinghaus, Jonathan Ursinus, Sebastian Döring, Wolfgang Maus-Friedrichs, René Gustus, Maik Szafarska
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引用次数: 0

Abstract

Due to the high specific surface area of titanium aluminide powders, significant and unavoidable surface oxidation takes place during processing. The resulting oxides disrupt the conventional powder metallurgical process route (pressing and sintering) by reducing the green strength and sintered properties. Oxide-free particle surfaces offer the potential to significantly increase particle bond strength and enable the processing of difficult-to-press material powders. In this work, the effect of milling titanium aluminide powder in a silane-doped atmosphere on the component properties after pressing and the subsequent sintering was investigated. Ball milling was used to break up the oxide layers and create bare metal surfaces on the particles. With the help of silane-doped inert gas, the oxygen partial pressure was greatly reduced during processing. It was investigated whether oxide-free surfaces could be produced and maintained by milling in silane-doped atmospheres. Furthermore, the resulting material properties after pressing and sintering were analysed using density measurements, hardness tests, EDX measurements, and micrographs. It was concluded that ball milling in a silane-doped atmosphere produces and maintains oxide-free particle surfaces. These oxide-free surfaces and smaller particle sizes improve the component properties after pressing and sintering.
掺杂硅烷气氛下球磨铝化钛粉末的压制与烧结
由于铝化钛粉末的高比表面积,在加工过程中不可避免地发生明显的表面氧化。由此产生的氧化物通过降低生坯强度和烧结性能,破坏了传统的粉末冶金工艺路线(压制和烧结)。无氧化物颗粒表面提供了显著提高颗粒结合强度的潜力,并使难压材料粉末的加工成为可能。本文研究了在掺杂硅烷的气氛中研磨铝化钛粉末对其压制和烧结后组分性能的影响。球磨被用来分解氧化层,并在颗粒上产生裸露的金属表面。在硅烷掺杂惰性气体的帮助下,加工过程中的氧分压大大降低。研究了在掺杂硅烷的气氛中是否可以通过铣削产生和保持无氧化表面。此外,通过密度测量、硬度测试、EDX测量和显微照片分析了压制和烧结后的材料性能。结果表明,在掺杂硅烷的气氛中球磨可以产生并保持无氧化物的颗粒表面。这些无氧化物表面和更小的颗粒尺寸改善了组件在压制和烧结后的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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