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A brittle fracture mechanism in thermally aged duplex stainless steels revealed by in situ high-energy X-ray diffraction

机译:原位高能X射线衍射揭示了热时效双相不锈钢的脆性断裂机理

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摘要

A direct relationship between the microstructural evolution and macroscopic fracture behaviors of a thermally aged (at 475 degrees C for 400 h) duplex stainless steel (DSS) has been established with experimental results from atom probe tomography (APT), nanoindentation and in situ synchrotron-based high-energy X-ray diffraction (HE-XRD). The APT experiments demonstrate that ferrite in DSS spinodally decomposes into Cr-enriched and Cr-depleted domains during thermal aging, which leads to a severe hardening effect in ferrite. The lattice strain development during deformation acquired with the in situ HE-XRD measurements confirms the cleavage fracture of alpha{110} and alpha{200} ferrite grains aligned perpendicular to loading direction. The thermally aged DSS can be readily fractured by connecting the cleavage cracks in ferrite. The spinodal-decomposition-induced hardening in ferrite and the premature failure of ferrite control the final brittle fracture in the aged DSS.
机译:根据原子探针层析成像(APT),纳米压痕和原位同步加速器的实验结果,已经建立了热时效(在475摄氏度下持续400 h)双相不锈钢(DSS)的微观组织演变与宏观断裂行为之间的直接关系。基高能X射线衍射(HE-XRD)。 APT实验表明,DSS中的铁素体在热时效过程中会发生分解,分解为富Cr和Cr贫化区域,从而导致严重的铁素体硬化作用。通过原位HE-XRD测量获得的变形过程中的晶格应变发展证实了垂直于加载方向排列的α{110}和α{200}铁素体晶粒的解理断裂。通过连接铁素体中的解理裂纹,热老化的DSS容易断裂。铁素体中的旋节线分解引起的硬化和铁素体的过早破坏控制了老化DSS中的最终脆性断裂。

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