材料科学
奥氏体
冶金
转化(遗传学)
奥氏体不锈钢
腐蚀
微观结构
生物化学
基因
化学
作者
Denis O’Sullivan,Ramesh Raghavendra,M. Cotterell,István Mészarós,David A. Tanner
摘要
Abstract Cold working of austenitic stainless steel results in the formation of α′-martensite (ferromagnetic) within the host material (paramagnetic). The role of α′-martensite and carbide precipitation in the reverse transformation mechanism during the heat treatment of AISI 304 is presented. A magnetic Barkhausen noise (MBN) measurement technique was employed to characterize the transformation mechanisms. MBN was found to be an effective tool for studying the transformation mechanisms of austenite to α′-martensite during material deformation as MBN and the ferromagnetic phase showed a good correlation. AISI 304 specimens plastically strained to 51 % were subjected to annealing heat treatment (from 100°C to 1,100°C) for 30 minutes. The α′-martensite to austenite reversion mechanisms were found to have a significant effect on residual stress and materials magnetic properties, thus limiting MBN effectiveness in studying the reverse transformation process. Residual stresses go from tensile to compressive between 500°C and 600°C as a result of the transformation mechanisms, as the austenitic phase is larger than α′-martensite and therefore compresses the remaining α′-martensite. It is suggested that ϵ-martensite has a significant role in the dislocation structural mechanisms in the heat treatment of AISI 304.
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