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Deformation mechanisms in ferritic/martensitic steels irradiated in HFIR

机译:HFIR辐照的铁素体/马氏体钢中的变形机制

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A reduced activation ferritic/martensitic steel, F82H (IEA heat), developed for fusion energy applications was irradiated at 300 and 500°C to 5 dpa in the High Flux Isotope Reactor (HFIR). Changes in yield strength, deformation mode, and strain-hardening capacity were seen, with the magnitude of the changes dependent on irradiation temperature. Irradiation at 300°C kled to a significant loss of strain-hardening capacity with a large change in yield strength. There was a tendency for a reduction in strain rate to cause a decrease in yield strength and elongation. Irradiation at 500°C had little effect on strength, but a reduction in strain rate caused a decrease in ductility. In order to determine the contributions of different microstructural features to strength and to deformation mode, transmission electron microscopy (TEM) specimens were from the gage sections of the tested (strained) flat tensile specimens and examined; fracture surfaces were examined by scanning electron microscopy (SEM). The fracture surfaces showed a martensitic mixed quasi-cleavage and ductile-dimple fracture in the center at both irradiation temperatures. The microstructure in the necked region irradiated at 300°C showed defect free bands, which may be dislocation channels. This suggests that dislocation channeling could be the dominant deformation mechanism in martensitic steels irradiated at 300°C, resulting in the loss of strain-hardening capacity.
机译:用于融合能量应用的减少的激活铁素体/马氏体钢,F82H(IEA热量)在高通量同位素反应器(HFIR)中以300和500℃至5dPa照射。看到屈服强度,变形模式和应变硬化能力的变化,随着辐照温度的变化的大小。在300°C kled的照射到屈服强度的大变化的应变硬化容量的显着损失。存在应变率降低趋势,以导致产量强度和伸长率降低。 500℃的照射对强度影响几乎没有影响,但应变率的降低导致延展性降低。为了确定不同微观结构特征对强度和变形模式的贡献,透射电子显微镜(TEM)样本来自测试(应变)平拉伸试样的量段和检查;通过扫描电子显微镜(SEM)检查裂缝表面。裂缝表面在辐照温度下显示在中心的马氏体混合准切割和延展性凹槽骨折。在300℃照射的颈颈区域中的微观结构显示出可缺陷的空带带,其可以是位错通道。这表明位错窜能可能是在300℃下照射的马氏体钢中的主导变形机制,导致应变硬化容量的损失。

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