两阶段热处理对高铬奥氏体锰钢微观结构和机械性能的影响

Mohammad Reza Hermawan, B. H. Setiamarga, Ilham Nur Hakim, Rizka Mulia Anggraeni
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摘要

在这项研究中,热处理被用来确定相当于 ASTM A128-C 的奥氏体锰钢的微观结构和机械特性的变化。在铸造条件下形成的碳化物会转变为分散硬化的奥氏体,以提高材料的韧性,因为碳化物可以抑制位错运动。热处理分两个加热阶段进行。第一阶段的加热温度为 625°C,保温时间分别为 2.5、3.5 和 4.5 小时;第二阶段的加热温度为 1000°C,保温时间恒定为 1.5 小时。此外,还进行了拉伸和硬度测试,以确定机械性能及其对两阶段加热的影响。研究结果表明,珠光体结构在第一阶段加热过程中形成,且薄片厚度不同。在 ImageJ 软件的帮助下,随着第一阶段加热保温时间的增加,测得的珠光体分数也随之增加。这影响了第二阶段加热中形成的碳化物菌落的形态。珠光体分数越高,形成的碳化物形态越均匀,圆形分布更均匀。这些分散的碳化物菌落可将材料的韧性提高到通过机械测试获得的铸造状态的 17 倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of two-stage heat treatment on the microstructure and mechanical properties of high chrome austenitic manganese steel
In this research, heat-treatment was used to determine changes in the microstructure and mechanical characteristics of austenitic manganese steel equivalent to ASTM A128-C. Carbide formed in as-cast conditions is transformed into dispersed hardened austenite to increase the toughness of the material because it can inhibit dislocation movement. Heat treatment is carried out in two heating stages. The first stage of heating was carried out at a temperature of 625°C with a holding time varying by 2.5, 3.5, and 4.5 h, and the second stage was carried out at a temperature of 1000°C with a constant holding time of 1.5 h. Microstructure observations were carried out to observe the structural morphology and carbide transformation in both the first and second stages of heating. Tensile and hardness tests were also carried out to determine the mechanical properties and their effect on two-stage heating. The research results show that the pearlite structure is formed in the first stage of heating with different lamella thicknesses. With the help of ImageJ software, the measured pearlite fraction was higher as the holding time increased in the first stage of heating. This affects the morphology of the carbide colonies formed in the second stage of heating. The higher the pearlite fraction, the more uniform the morphology of the carbide formed with round shapes that are more evenly distributed. These dispersed carbide colonies can increase the toughness of the material up to 17 times higher than the as-cast condition obtained through mechanical testing.  
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