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The effect of strain-induced martensite transformation on strain partitioning and damage evolution in a duplex stainless steel with metastable austenite

机译:应变诱导的马氏体转化对双相不锈钢与稳定性奥氏体的损伤演化的影响

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Transformation induced plasticity (TRIP) assisted lean duplex stainless steels (LDSS) possess a multi-phase microstructure during deformation due to strain-induced martensite transformation (SIMT). The effect of SIMT on the strain partitioning into constituent phases, which in turn affects the SIMT kinetics is highlighted. The individual stress-strain relationships of each phase are obtained via a microstructure-based model and the gradual fragmentation of austenite grain resulted from SIMT is especially considered. A modified model of partitioned strain in the austenite considering the contribution of martensite is proposed, whereby the actual SIMT kinetics in the parent austenite phase can be quantitatively determined. Besides, the contributed strain of each constituent phase during the progress of deformation can be evaluated directly. Furthermore, EBSD and in-situ tensile tests were carried out to characterize the influences of SIMT and resulting high strain localization on the damage evolution. The cracking nucleation initiates at the α/α' interface as well as the inside of ferrite near the interface. Subsequently, they grow along the α/α' interface with further straining and, finally, merge into one interfacial crack. The combined crack forks off at the interface with small curvature, then the secondary cracks penetrate into austenite/martensite layer and ferrite layer, respectively, resulting in the final failure. The overall fracture of LDSS shows the ductile feature, although the ferrite and the martensite in the local region of fracture surface show the trace of quasi-cleavage fracture, the remained austenite exhibits dimple-typed fracture.
机译:转化诱导的塑性(TRIP)辅助贫双链不锈钢(LDS)由于应变诱导的马氏体转化(SIMT)而变形期间具有多相微观结构。 SIMT对应变分配到组成阶段的影响,又突出了模拟动力学。通过基于微结构的模型获得各相的各个应力 - 应变关系,特别考虑由SIMT引起的奥氏体谷物的逐渐破碎碎片。提出了考虑马氏体贡献的奥氏体中分配菌株的改性模型,从而可以定量确定母体奥氏体相中的实际SIMT动力学。此外,可以直接评估变形进度期间的每个组成阶段的贡献应变。此外,进行了EBSD和原位拉伸试验,以表征SIMT的影响并导致损伤进化的高应变局部化。裂解成核在α/α'界面中引发,以及界面附近的铁氧体的内部。随后,它们沿着α/α'界面生长,并且最终将其合并为一个界面裂缝。在具有小曲率的界面处脱掉的组合裂纹叉,然后分别渗透到奥氏体/马氏体层和铁氧体层中,导致最终失效。 LDS的整体骨折显示延展性特征,但是铁氧体和局部骨折表面区域中的马氏体显示出准切割骨折的痕迹,但残留的奥氏体表现出凹痕类型的骨折。

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