Combined Effect of Particle Reinforcement and T6 Heat Treatment on the Compressive Deformation Behavior of an A357 Aluminum Alloy at Room Temperature and at 350 °C

Crystals Pub Date : 2024-03-28 DOI:10.3390/cryst14040317
S. J. Hirsch, Nadja Berndt, Thomas Grund, T. Lampke
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Abstract

Solid state sintering of cast aluminum powders by resistance heating sintering (RHS), also known as spark plasma sintering or field-assisted sintering technique, creates a very fine microstructure in the bulk material. This leads to high performance material properties with an improved strength and ductility compared to conventional production routes of the same alloys. In this study, the mechanical behavior of an RHS-sintered age-hardenable A357 (AlSi7Mg0.6) cast alloy and a SiCp/A357 aluminum matrix composite (AMC) was investigated. Aiming for high strength and good wear behavior in tribological applications, the AMC was reinforced with a high particle content (35 vol.%) of a coarse particle fraction (d50 = 21 µm). Afterwards, separated and combined effects of particle reinforcement and heat treatment were studied under compressive load both at room temperature and at 350 °C. At room temperature compression, the strengthening effect of precipitation hardening was about twice as high as that for the particle reinforcement, despite the high particle content. At elevated temperatures, the compressive deformation behavior was characterized by simultaneously occurring temperature-activated recovery, recrystallisation and precipitation processes. The occurrence and interaction of these processes was significantly affected by the initial material condition. Moreover, a rearrangement of the SiC reinforcement particles was detected after hot deformation. This rearrangement lead to a homogenized dispersion of the reinforcement phase without considerable particle fragmentation, which offers the potential for secondary thermo-mechanical processing of highly reinforced AMCs.
颗粒强化和 T6 热处理对 A357 铝合金在室温和 350 °C 下压缩变形行为的综合影响
通过电阻加热烧结(RHS)(也称为火花等离子烧结或场辅助烧结技术)对铸造铝粉进行固态烧结,可在块状材料中形成非常精细的微观结构。与同种合金的传统生产工艺相比,这种技术能提高材料的强度和延展性,从而实现高性能材料特性。本研究调查了 RHS 烧结时效硬化 A357(AlSi7Mg0.6)铸造合金和 SiCp/A357 铝基复合材料(AMC)的机械性能。为了在摩擦学应用中获得高强度和良好的磨损性能,AMC 采用高颗粒含量(35 vol.%)的粗颗粒部分(d50 = 21 µm)进行增强。随后,在室温和 350 °C 的压缩载荷条件下,研究了颗粒强化和热处理的单独效应和组合效应。在室温压缩条件下,尽管颗粒含量较高,但沉淀硬化的强化效果约为颗粒强化效果的两倍。在高温条件下,压缩变形行为的特点是同时发生温度激活的恢复、再结晶和沉淀过程。这些过程的发生和相互作用受到初始材料条件的显著影响。此外,在热变形后还检测到了碳化硅增强粒子的重新排列。这种重新排列导致了强化相的均匀分散,而没有出现大量的颗粒破碎,这为高强化 AMC 的二次热机械加工提供了可能性。
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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