通过加入 TiB2 粒子和 Sc 改变非热处理 HPDC AlSi10MnMg 铸造合金的微观结构和力学性能

Nisha Shareef, Xiang Ting Liu, Kai Zhao, Muhammad Saqib Shahzad, Jing Tao Zhang, E. Guo, Hui Jun Kang, Zhi Gang Hao, Jie Hua Li, Cun-shan Wang, Zong Ning Chen, Tongzhen Wang
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摘要

各行各业,尤其是汽车行业对结构轻量化的需求,推动了具有优异性能的无热压铸铝合金的发展。使用铝硅合金等轻质材料有多种好处,包括提高汽车和其他行业的整体性能、提高耐热效率、减少排放和减轻重量。本研究的目的是在不进行任何热处理的情况下,通过加入 TiB2 和 Sc 来改变高压压铸 (HPDC) AlSi10MnMg 铸造合金的微观结构并提高其机械性能。结果表明,高压压铸工艺显著细化了晶粒结构和 AlSiMnFe 金属间化合物,使共晶形态从尖锐变为圆润,在 TiB2 的最佳含量(0.018 wt.%)下,伸长率提高了 93%。加入 0.03 重量百分比的 TiB2 后,合金的硬度提高了 15.7%。TiB2 的加入细化了晶粒结构和 AlSiMnFe 相,同时抑制了外部凝固晶体 (ESC)。HPDC 工艺细化了 Al3Sc 相和 AlSiMnFe 相,同时由于 Al3Sc 的强化效应提高了屈服强度。在 0.018 重量百分比的 TiB2-AlSi10MnMg 合金中添加 0.5 重量百分比的 Sc 后,YS 和 EL 分别达到 196MPa 和 9.93% 的最大值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modifying the Microstructure and Mechanical Properties of Non-Heat Treated HPDC AlSi10MnMg Foundry Alloy via Incorporation of TiB2 Particles and Sc
The demand for structural lightweight in a variety of industries, particularly the automobile industry, has driven the development of heat-free die-cast aluminum alloys with excellent properties. Utilizing lightweight materials, such as Al-Si alloys has several benefits, including higher overall performance in automobiles and other industries, increased heat resistance efficiency, decreased emissions, and reduced weight. The purpose of this study is to modify the microstructure and enhance the mechanical properties of high-pressure die-casting (HPDC) AlSi10MnMg foundry alloy by incorporation of TiB2 and Sc without any heat treatment. The results showed that the HPDC process significantly refines the grain structure and AlSiMnFe intermetallic compounds, transforming the eutectic morphology from sharp to rounded, and 93% enhancement in elongation at the optimum content (0.018 wt.%) of TiB2. While the hardness of the alloy was improved by 15.7% with the addition of 0.03wt.% TiB2. TiB2 incorporation refines the grain structure and AlSiMnFe phases, while depressing externally solidified crystals (ESCs). The HPDC process refines Al3Sc phases as well as AlSiMnFe phases while increasing yield strength due to Al3Sc strengthening effects. After 0.5wt.% Sc addition in 0.018wt.% TiB2-AlSi10MnMg alloy, the YS, and EL reached the maximum of 196MPa and 9.93% respectively.
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