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Hot deformation and restoration mechanisms in duplex stainless steels: Effect of strain rate

机译:双相不锈钢的热变形和恢复机制:应变率的影响

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摘要

In the current study, the microstructural evolution has been investigated for a 2205 duplex stainless steel during uniaxial hot compression at a temperature of 1000 °C at different strain rates in the range of 0.1-50 s-1. It was found that the strain rate changed the dynamic restoration mechanism in ferrite. At strain rates below 1 s-1, ferrite underwent continuous dynamic recrystallization characterized by a gradual increase in misorientation angles between adjacent subgrains. When the strain rate exceeded the above value, ferrite tended to soften through the discontinuous dynamic recrystallization (DDRX) mechanism associated with nucleation and growth of new grains. Austenite showed rather similar microstructure characteristics for different strain rates. The majority of austenitic grains experienced dynamic recovery accompanied at high strain values by a small fraction of new DDRX grains. The main feature of the austenite phase was the profuse formation of deformation bands separated by transition regions and locally containing microband (MB) arrays. It was found that, independent of the orientation of austenite grains, MB boundaries were typically aligned with high Schmid factor {111} slip planes.
机译:在当前的研究中,已经研究了2205双相不锈钢在1000°C温度下在0.1-50 s-1范围内的不同应变率下的单轴热压缩过程中的显微组织演变。发现应变率改变了铁素体的动态恢复机制。在低于1 s-1的应变速率下,铁素体进行连续动态重结晶,其特征在于相邻亚晶粒之间的取向差角逐渐增大。当应变率超过上述值时,铁素体倾向于通过与新晶粒的成核和生长相关的不连续动态再结晶(DDRX)机制软化。对于不同的应变速率,奥氏体表现出相当相似的微观结构特征。大多数奥氏体晶粒都经历了动态恢复,并伴随着高应变值,同时又出现了一小部分新的DDRX晶粒。奥氏体相的主要特征是形变带的大量形成,这些形变带由过渡区域分隔开并局部包含微带(MB)阵列。已发现,与奥氏体晶粒的取向无关,MB边界通常与高Schmid因子{111}滑动面对齐。

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