Hot deformation characteristics and processing map analysis of Al-Zn/stainless steel particles-based composite

Theo Oluwasegun Joshua , Kenneth Kanayo Alaneme , Sodiq Abiodun Kareem , Michael Oluwatosin Bodunrin
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Abstract

The hot deformation behavior of Al-Zn/martensitic stainless steel particles-based composite (Al-Zn/6 %SSp), was examined in this study. The composite was tested using isothermal compression at 200–350 °C/0.01–10 s−1 and a global strain of 0.5. From the results, it was noticed that the composite’s flow stress increased with strain rate increase and drop in temperature. The constitutive equation from the hot-worked composites resulted in an estimated activation energy of 226.27 kJ/mol, which was 58 % more than that for the self-diffusion of aluminum alloy (142 kJ/mol). These findings suggest dynamic recrystallization (DRX) as the dominant deformation mechanism, as confirmed from the microstructures of the hot worked samples mostly at high temperatures and strain rates. Work hardening was predicted to dominate the deformation process by the stress exponent (n) value of 10.36 (which exceeded 5), but this was inconsistent with the microstructural observations. Comparing the linear fitting of calculated flow stress data with the estimated flow stress yielded a correlation coefficient (R2) of approximately 0.97. This observation demonstrates an effective relationship involving the calculated stress with the computed stress value for the composite material that was fabricated. Based on the processing map analysis, the instability regime occurs at 200270 °C/0.01–10 s−1. The stable domain established was at 280–340C/0.01–10 s−1 which is most suitable for achieving the best microstructural conditions for enhanced service performance.

铝锌/不锈钢颗粒基复合材料的热变形特性和加工图分析
本研究考察了铝锌/马氏体不锈钢颗粒基复合材料(Al-Zn/6 %SSp)的热变形行为。复合材料在 200-350 °C/0.01-10 s-1 和 0.5 的整体应变条件下进行了等温压缩测试。结果表明,复合材料的流动应力随着应变率的增加和温度的降低而增加。根据热加工复合材料的构成方程,估计活化能为 226.27 kJ/mol,比铝合金自扩散的活化能(142 kJ/mol)高出 58%。这些研究结果表明,动态再结晶(DRX)是主要的变形机制,热加工样品的微观结构也证实了这一点,主要是在高温和应变速率下。应力指数 (n) 值为 10.36(超过 5),预示加工硬化将主导变形过程,但这与微观结构观察结果不一致。将计算的流动应力数据与估计的流动应力进行线性拟合比较,得出的相关系数 (R2) 约为 0.97。这一观察结果表明,计算应力与所制造复合材料的计算应力值之间存在有效关系。根据加工图分析,不稳定状态发生在 200270 °C/0.01-10 s-1。建立的稳定域位于 280-340◦C/0.01-10 s-1,最适合实现最佳微观结构条件,以提高使用性能。
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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