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A review on selective laser sintering/melting (SLS/SLM) of aluminium alloy powders: Processing, microstructure, and properties

机译:铝合金粉末选择性激光烧结/熔化(sLs / sLm)综述:加工,显微组织和性能

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摘要

Manufacturing businesses aiming to deliver their new customised products more quickly and gain more consumer markets for their products will increasingly employ selective laser sintering/melting (SLS/SLM) for fabricating high quality, low cost, repeatable, and reliable aluminium alloy powdered parts for automotive, aerospace, and aircraft applications. However, aluminium powder is known to be uniquely bedevilled with the tenacious surface oxide film which is difficult to avoid during SLS/SLM processing. The tenacity of the surface oxide film inhibits metallurgical bonding across the layers during SLS/SLM processing and this consequently leads to initiation of spheroidisation by Marangoni convection. Due to the paucity of publications on SLS/SLM processing of aluminium alloy powders, we review the current state of research and progress from different perspectives of the SLS/SLM, powder metallurgy (P/M) sintering, and pulsed electric current sintering (PECS) of ferrous, non-ferrous alloys, and composite powders as well as laser welding of aluminium alloys in order to provide a basis for follow-on-research that leads to the development of high productivity, SLS/SLM processing of aluminium alloy powders. Moreover, both P/M sintering and PECS of aluminium alloys are evaluated and related to the SLS process with a view to gaining useful insights especially in the aspects of liquid phase sintering (LPS) of aluminium alloys; application of LPS to SLS process; alloying effect in disrupting the surface oxide film of aluminium alloys; and designing of aluminium alloy suitable for the SLS/SLM process. Thereafter, SLS/SLM parameters, powder properties, and different types of lasers with their effects on the processing and densification of aluminium alloys are considered. The microstructure and metallurgical defects associated with SLS/SLM processed parts are also elucidated by highlighting the mechanism of their formation, the main influencing factors, and the remedial measures. Mechanical properties such as hardness, tensile, and fatigue strength of SLS/SLM processed parts are reported. The final part of this paper summarises findings from this review and outlines the trend for future research in the SLS/SLM processing of aluminium alloy powders.
机译:旨在更快地交付其新的定制产品并赢得更多消费者市场的制造企业,将越来越多地采用选择性激光烧结/熔融(SLS / SLM)来制造高质量,低成本,可重复且可靠的汽车铝合金粉末零件,航空航天和飞机应用。但是,已知铝粉独特地具有坚韧的表面氧化膜,这在SLS / SLM处理过程中很难避免。表面氧化物膜的韧性抑制了SLS / SLM处理过程中各层之间的冶金结合,因此导致通过Marangoni对流引发球化作用。由于关于铝合金粉末的SLS / SLM处理的出版物很少,我们从SLS / SLM,粉末冶金(P / M)烧结和脉冲电流烧结(PECS)的不同角度回顾了研究和进展的现状铁,非铁合金,复合粉末)以及铝合金的激光焊接,以便为后续研究奠定基础,从而导致开发高生产率的SLS / SLM铝合金粉末。此外,对铝合金的P / M烧结和PECS进行了评估并与SLS工艺相关,以期获得有用的见解,尤其是在铝合金的液相烧结(LPS)方面; LPS在SLS过程中的应用;合金化作用破坏铝合金的表面氧化膜;适用于SLS / SLM工艺的铝合金的设计与制造。此后,考虑了SLS / SLM参数,粉末性质以及不同类型的激光,它们对铝合金的加工和致密化有影响。通过突出其形成机理,主要影响因素和补救措施,还阐明了与SLS / SLM加工零件相关的显微组织和冶金缺陷。报告了SLS / SLM加工零件的机械性能,例如硬度,拉伸强度和疲劳强度。本文的最后一部分总结了这次综述的发现,并概述了在铝合金粉末的SLS / SLM处理中未来研究的趋势。

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