Lüders and Portevin–Le Chatelier processes in austenitic-martensitic TRIP steel

V. Danilov, D. V. Orlova, V. Gorbatenko, L. Danilova
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Abstract

The authors studied the nature of mobile fronts of localized deformation that generate and propagate during deformation of metastable austenitic-martensitic TRIP steel VNS9-Sh along the entire length of the loading curve from the yield point to fracture. A joint research of the nature of the deformation fronts movement and kinetics of the magnetic phase accumulation made it possible to establish that the fronts under consideration are the fronts of the thermoelastic phase transformation of metastable austenite into martensite. This transformation is realized firstly by formation of the Chernov–Lüders bands and then the Portevin–Le Chatelier bands. Both processes are consistent with staging of the deformation curve, which contains a pseudo-plateau, a section with an increasing hardening coefficient, and a section with a decreasing hardening coefficient. It is shown that the deformation-induced phase transformation corresponds to the fronts propagating on the pseudo-plateau and on the section of loading curve with an increasing hardening coefficient. The Portevin–Le Chatelier bands, which are formed in the section of the loading diagram with a decreasing hardening coefficient, are not associated with “austenite-martensite” transformation and have a twin nature. The kinetics of thermoelastic transformation fronts, as well as deformation fronts in materials with a shear mechanism of shaping, can be described in terms of the autowave concept. On the yield plateaus, the phase transformation occurs through generation and propagation of localized plasticity switching autowaves. In the section with an increasing hardening coefficient, it continues through generation and movement of excitation autowaves. The propagation regions of excitation autowaves are limited in the sample space. They are set by the zones of origin and annihilation of primary switching autowaves which were formed on the yield plateau.
奥氏体-马氏体 TRIP 钢中的 Lüders 和 Portevin-Le Chatelier 过程
作者研究了可变质奥氏体-马氏体 TRIP 钢 VNS9-Sh 从屈服点到断裂的整个加载曲线长度上变形过程中产生和传播的局部变形移动前沿的性质。通过对变形前沿运动性质和磁性相积累动力学的联合研究,可以确定所考虑的前沿是可变质奥氏体向马氏体的热弹性相变前沿。这种转变首先是通过形成切尔诺夫-吕德斯带,然后是波特文-勒夏特列带实现的。这两个过程与变形曲线的分期一致,变形曲线包含一个假高原、一个硬化系数递增段和一个硬化系数递减段。研究表明,变形引起的相变对应于在伪高原和加载曲线中硬化系数增大的部分上传播的锋面。在加载图中硬化系数递减段形成的波特文-勒夏特列带与 "奥氏体-马氏体 "转变无关,具有孪生性质。热弹性转变前沿以及具有剪切成形机制的材料变形前沿的动力学可以用自波概念来描述。在屈服高原上,相变是通过局部塑性切换自波的产生和传播而发生的。在硬化系数不断增大的区段,相变通过激发自波的产生和移动继续进行。激发自波的传播区域在样品空间中是有限的。它们由在屈服台上形成的原初开关自波的起源区和湮灭区构成。
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