铝硅的老化动力学和沉淀硬化行为:体积分数检验法

Okechukwu Thomas Onah, Samuel David Tommy, Obinna Nwankwo Nwoke
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摘要

本研究探讨了硅铁-碳化硅增强铝金属基复合材料(AMCs)的老化动力学和沉淀硬化行为,重点研究了改变增强体的体积分数(%Vf)、老化温度和时间对材料行为的影响。该研究系统分析了采用双搅拌铸造技术制造的 AMMC 材料中碳化硅(SiC)的不同体积分数百分比,以研究材料的老化动力学、沉淀硬化行为及其对材料机械性能的影响,从而确定最佳老化条件,最大限度地提高复合材料的性能。碳化硅微粒在微结构中的体积百分比和分布对老化动力学和沉淀硬化行为有显著影响;因为较高的增强百分比会产生明显的硬化效应,使复合材料的硬度提高 45.98%,屈服强度提高 46.28%。材料的扩散活化能随着碳化硅含量的增加而增加,从碳化硅含量为 0%Vf 时的 3508.508 J/mol 增加到碳化硅含量为 25%Vf 时的 9170.342 J/mol。所观察到的活化能增加是由于 Al-Si 原子的扩散途径复杂且增强,从而导致活化能增加,以维持扩散过程。随着老化时间的相应延长,析出硬化的加速度下降。因此,在 100 老化温度下,析出硬化比 (R) 从 0.9(含 5%Vf 的碳化硅)下降到 0.6(含 25%Vf 的碳化硅)。15-20 %Vf 的碳化硅在加速老化动力学和可控活化能之间实现了良好的平衡,在提供高效硬化的同时不会产生过高的扩散障碍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ageing kinetics and precipitation hardening behavior of aluminum-silicon: A volume fractions examination approach
This work examines the ageing kinetics and precipitation hardening behaviour of ferrosilicon-silicon carbide reinforced aluminium metal matrix composites (AMMCs) with particular focus on the influence of varying the percentage volume fractions (%Vf) of reinforcement, ageing temperature and time on the material’s behaviour. The investigation systematically analyzed different %Vf of silicon carbide (SiC) of the AMMCs fabricated using dual stir casting technique; to examine the ageing kinetics, precipitation hardening behaviour and their impacts on the material’s mechanical properties so as to identify optimal ageing conditions for maximizing the performance of the composites. Percentage volume fraction and distribution of SiC particulates within the microstructure significantly affected the ageing kinetics and precipitation hardening behaviour; as higher %Vf of reinforcement led to a pronounced hardening effect which enhanced composite’s hardness by 45.98% and the yield strength by 46.28%. The activation energy of diffusion of the material increased with higher %Vf of SiC from 3508.508 J/mol at 0%Vf of SiC to 9170.342 J/mol at 25%Vf of SiC. This observed increment in activation energy follows the complex and enhanced diffusion pathway of Al-Si atoms, resulting in higher activation energy for the sustenance of the diffusion processes. The acceleration to precipitation hardening dropped with corresponding increase in ageing time. Thus, the precipitates hardening ratio (R) decreased from 0.9 with 5%Vf of SiC to 0.6 with 25%Vf of SiC at 100 ageing temperatures. A 15-20 %Vf of SiC offered a good balance between accelerated ageing kinetics and manageable activation energy, providing efficient hardening without excessively high diffusion barriers.
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