The Influence of Cold Deformation and Annealing on Texture Changes in Austenitic Stainless Steel

J. Kowalska, M. Witkowska
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Abstract

Austenitic stainless steels are widely used in industry, from heavy industry and power generation to precision me - chanics and electronics, accounting for about 2/3 of the stainless steels produced. The stability of austenite influ - ences the properties and behaviour of these steels during deformation and annealing. This paper presents the results of research into austenitic metastable phase X5CrNi1810 steel, which was subjected to cold rolling (in the range of 5 to 80%) and then annealing (at temperatures of 500–900 °C). The research focused mainly on changes in crystal - lographic texture parameters occurring during the analysed processes. It was found that the observed development of the deformation texture is complex due to the fact that several processes take place simultaneously. Namely, the deformation of austenite, the transformation of austenite into martensite, and the deformation of the resulting mar - tensite. The texture of the deformed austenite was similar to the texture of the alloy type {112}<110>. After 80% deformation, the Goss-type {110}<001> texture component showed the highest intensity. The lack of {112}<111> orientation in the texture was due to the fact that this orientation changes to the {112}<110> martensite orientation as a result of the γ → α’ phase transition. Annealing of the deformed steel at 500 °C led to an increase in the degree of texturing (sharpening of the texture), which was related to the improvement of the texture in this temperature range. Above 600 °C, the degree of texturing decreased, which is directly related to the α ’ → γ reverse transformation and the subsequent recrystallization process. Magnetic studies indicate an increasing proportion of the magnetic phase α’ (martensite) together with an increasing degree of deformation. For deformation of 80%, the amount of magnetic phase reached a value of more than 33%. After annealing at a temperature of 800 °C, there is no martensite in the structure, which indicates that, in these heat treatment conditions, the complete reverse transformation of martensite into austenite has already taken place.
冷变形和退火对奥氏体不锈钢纹理变化的影响
奥氏体不锈钢广泛应用于工业领域,从重工业和发电到精密机械和电子产品,约占不锈钢产量的三分之二。奥氏体的稳定性影响着这些钢材在变形和退火过程中的性能和表现。本文介绍了对奥氏体隐晶相 X5CrNi1810 钢的研究结果,该钢经过冷轧(5% 至 80%),然后退火(温度为 500-900 ℃)。研究主要集中在分析过程中发生的晶体-岩相纹理参数的变化。研究发现,由于多个过程同时进行,因此观察到的变形纹理发展非常复杂。即奥氏体的变形、奥氏体向马氏体的转变以及由此产生的马氏体的变形。变形奥氏体的质地与合金{112}的质地相似。变形 80% 后,高斯型 {110} 纹理成分的强度最高。纹理中缺少{112}取向是因为γ → α'相变导致{112}取向转变为马氏体取向。变形钢在 500 °C 退火会导致纹理程度增加(纹理变锐利),这与该温度范围内纹理的改善有关。在 600 °C 以上,纹理程度下降,这与α ' → γ 反向转变和随后的再结晶过程直接相关。磁性研究表明,磁性相 α'(马氏体)的比例随着变形程度的增加而增加。当变形程度达到 80% 时,磁性相的数量达到 33% 以上。在 800 °C 的温度下退火后,结构中没有马氏体,这表明在这些热处理条件下,马氏体已经完全逆向转变为奥氏体。
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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