变形诱导的 α'-马氏体和铁素体晶界对 201 奥氏体不锈钢低温变形和断裂行为的影响

IF 1.6 4区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING
Pham Mai Khanh, Hoang Thi Ngoc Quyen
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引用次数: 0

摘要

本研究主要探讨了 201 奥氏体钢在室温(RT)和 -40 ° C 下 1 小时和 3 小时的断裂模式。结果表明,在室温下,断裂以韧性行为为主。在-40 °C时,断裂模式是韧性和脆性行为的混合。201 型奥氏体不锈钢的堆叠断层能值较低(在室温下约为 16 mJ.m-2),导致了转化诱导塑性(TRIP)效应的激活。将样品在 -40 °C 下浸泡 3 小时后,会形成变形诱导马氏体转变(DIMT),其体积分数显著上升至 19.9%。在 -40 °C 下浸泡 3 小时后,合金的冲击能量吸收率降低了 39%。变形奥氏体晶粒与先前奥氏体晶界的相互作用导致在-40 °C下浸泡的样品中形成锯齿状晶界。锯齿状晶界可阻止裂纹扩展,并减少该合金断裂时晶界处的裂纹扩展。锯齿状晶界的裂纹宽度比直晶界的裂纹宽度小 38%。
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 Deformation-induced α’-martensite and Serrated Grain Boundaries on The Deformation and Fracture Behavior of 201 Austenitic Stainless Steel at Low Temperature

This study focuses on the fracture mode of 201 austenitic steel at room temperature (RT) and at -40 °C for one hour and three hours. The results reveal that at room temperature, the fracture is dominated by ductile behavior. At - 40 °C, the fracture mode is a mix of ductile and brittle behavior. Type 201 austenitic stainless steel has a low stacking fault energy value (about 16 mJ.m-2 at RT), leading to the activation of the transformation-induced plasticity (TRIP) effect. When the sample is soaked at -40 °C for three hours, deformation-induced martensite transition (DIMT) formation with the volume fraction rises significantly to 19.9 %. At -40 °C for 3 hours, the alloy's impact energy absorption is reduced by 39%. The interaction of deformed austenite grains with previous austenite grain boundaries results in the formation of serrated grain boundaries in samples soaked at -40 °C. Serrated grain boundaries prevent crack propagation and reduce crack expansion at the grain boundary during the fracture of this alloy. The width of the crack at serrated grain boundaries is 38% less than that of the straight grain boundary.

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来源期刊
Isij International
Isij International 工程技术-冶金工程
CiteScore
3.40
自引率
16.70%
发文量
268
审稿时长
2.6 months
期刊介绍: The journal provides an international medium for the publication of fundamental and technological aspects of the properties, structure, characterization and modeling, processing, fabrication, and environmental issues of iron and steel, along with related engineering materials.
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