MICROSTRUCTURE EVOLUTION AND PHASE TRANSFORMATIONS IN MICROALLOYED ARMOX 500T STEEL DURING A DILATATION PROCESS

IF 0.6 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Materiali in tehnologije Pub Date : 2023-10-03 DOI:10.17222/mit.2023.804
Mervat Youssef, Eman El-Shenawy, Wael Khair-Eldeen, Tadaharu Adachi, Adel Nofal, Mohsen A. Hassan
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引用次数: 1

Abstract

With this work we successfully developed two modified Armox 500T alloys using microalloying with different amounts of niobium (Nb) and boron (B) to obtain a finer grain size, which in return enhances the remnant properties. Furthermore, different heat-treatment cycles were designed and performed using a quenching dilatometer to study the combined effect of thermal cycling and microalloying with Nb and B on the microstructure and transformation temperatures including the start and finish temperature of the austenite transformation (Ac1, Ac3) and the martensite start and finish temperature (Ms, Mf) of the investigated alloys. Dilatometry results show that increasing the content of Nb from 0.07 w/% to 0.13 w/% and B from 0.0035 to 0.0046 w/% increases the temperature range between Ac1 and Ac3 by 55 °C, indicating a broader range for changing heat-treatment temperatures. In addition, the Ms temperature is reduced by 13 °C due to austenite refinement caused by the microalloying of Nb and B. The effect of the annealing temperature at a constant heating rate showed a significant impact on the austenite grain size and hardness. Furthermore, the kinetics of phase transformations were theoretically studied using Thermo-Calc, and the numerical predictions were confirmed experimentally with dilatometry results. Metallography investigations using a scanning electron microscope (SEM) and an optical microscope (OM) were conducted to evaluate the microstructure evolution of the developed alloys. Hardness tests were performed to evaluate the effect of the grain refinement of martensite lathes caused by microalloying with Nb, B, and heat-treatment thermal cycling. It is found that the hardness of the modified Armox alloys in this research was improved by 14 % in comparison with the conventional Armox 500T.
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微合金化armox 500t钢在膨胀过程中的组织演变和相变
通过这项工作,我们成功地开发了两种改性的Armox 500T合金,使用不同数量的铌(Nb)和硼(B)进行微合金化,获得了更细的晶粒尺寸,从而提高了残余性能。采用淬火膨胀仪设计不同热处理循环,研究热循环和微量合金化对合金组织和转变温度的影响,包括奥氏体转变的开始和结束温度(Ac1, Ac3)和马氏体转变的开始和结束温度(Ms, Mf)。膨胀测量结果表明,将Nb的含量从0.07 w/%增加到0.13 w/%, B的含量从0.0035 w/%增加到0.0046 w/%, Ac1和Ac3之间的温度范围增加了55℃,表明热处理温度的变化范围更大。此外,由于Nb和b的微合金化导致奥氏体细化,Ms温度降低了13℃。恒定升温速率下的退火温度对奥氏体晶粒尺寸和硬度有显著影响。此外,用热钙法对相变动力学进行了理论研究,并用膨胀测量法的实验结果证实了数值预测。利用扫描电子显微镜(SEM)和光学显微镜(OM)进行金相观察,评价合金的微观组织演变。通过硬度试验评价Nb、B微合金化和热处理热循环对马氏体车床晶粒细化的影响。结果表明,与常规Armox 500T合金相比,改性Armox合金的硬度提高了14%。
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来源期刊
Materiali in tehnologije
Materiali in tehnologije 工程技术-材料科学:综合
CiteScore
1.30
自引率
0.00%
发文量
73
审稿时长
4-8 weeks
期刊介绍: The journal MATERIALI IN TEHNOLOGIJE/MATERIALS AND TECHNOLOGY is a scientific journal, devoted to original papers and review scientific papers concerned with the areas of fundamental and applied science and technology. Topics of particular interest include metallic materials, inorganic materials, polymers, vacuum technique and lately nanomaterials.
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