工艺参数对Al-Sn混溶间隙合金激光粉末床熔化的影响

IF 1.3 Q3 INSTRUMENTS & INSTRUMENTATION
Chiara Confalonieri, R. Casati, E. Gariboldi
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引用次数: 2

摘要

Al-Sn二元系是由富Al相和富Sn相组成的可混溶间隙合金。该系统传统上应用于轴承,最近被用作利用Sn固液相变的形状稳定相变材料(PCM)。需要仔细选择生产工艺,以避免密度和熔融温度不同的两相发生宏观偏析。在本研究中,将称为激光粉末床熔融(LPBF)的增材制造工艺应用于含有20%体积Sn的Al-Sn合金,作为快速凝固工艺。评价了工艺参数对显微组织和硬度的影响。此外,还对同一合金晶格结构的可行性和热循环稳定性进行了实验研究。Al-Sn晶格结构可以用作低熔点有机PCM(例如,石蜡或脂肪酸)的容器,由于金属网络和“安全系统”,如果系统温度超过Sn熔点,则可以降低热扩散率,从而提供高的热扩散率。即使将重点放在热管理系统中应用的Al-Sn上,该研究也有助于优化具有类似热或结构应用的其他混溶间隙合金(如Fe-Cu)的局部制造工艺,包括高凝固速率和再热循环。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of Process Parameters on Laser Powder Bed Fusion of Al-Sn Miscibility Gap Alloy
Al-Sn binary system is a miscibility gap alloy consisting of an Al-rich phase and a Sn-rich phase. This system is traditionally applied in bearings and more recently found application as form-stable phase change material (PCM) exploiting solid-liquid phase transition of Sn. A careful choice of production process is required to avoid macro-segregation of the two phases, which have different densities and melting temperatures. In the present study, the additive manufacturing process known as laser powder bed fusion (LPBF) was applied to an Al-Sn alloy with 20% volume of Sn, as a rapid solidification process. The effect of process parameters on microstructure and hardness was evaluated. Moreover, feasibility and stability with thermal cycles of a lattice structure of the same alloy were experimentally investigated. An Al-Sn lattice structure could be used as container for a lower melting organic PCM (e.g., a paraffin or a fatty acid), providing high thermal diffusivity thanks to the metallic network and a “safety system” reducing thermal diffusivity if the system temperature overcomes Sn melting temperature. Even if focused on Al-Sn to be applied in thermal management systems, the study offers a contribution in view of the optimization of manufacturing processes locally involving high solidification rates and reheat cycles in other miscibility gap alloys (e.g., Fe-Cu) with similar thermal or structural applications.
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来源期刊
CiteScore
2.80
自引率
28.60%
发文量
27
审稿时长
11 weeks
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