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MICROMECHANISMS OF HYDROGEN-ASSISTED CRACKING IN SUPER DUPLEX STAINLESS STEEL INVESTIGATED BY SCANNING PROBE MICROSCOPY

机译:扫描探针显微镜研究超双相不锈钢中氢致裂纹的微观机理

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Understanding the micromechanisms of hydrogen-assisted fracture in multiphase metals is of great scientific and engineering importance. By using a combination of scanning electron microscopy (SEM), scanning tunneling microscopy (STM), atomic force microscopy (AFM) and magnetic force microscopy (MFM), the micromorphology of fracture surface and microcrack formation in hydrogen-precharged super duplex stainless steel 2507 are characterized from microscale to nanoscale. The results reveal that the fracture surfaces consist of quasi-brittle facets with riverlike patterns at the microscale, which exhibit rough irregular patterns or remarkable quasi-periodic corrugation patterns at the nanoscale that can be correlated with highly localized plastic deformation. The microcracks preferentially initiate and propagate in ferrite phase and are stopped or deflected by the boundaries of the austenite phase. The hydrogen-assisted cracking mechanisms in super duplex stainless steel are discussed according to the experimental results and hydrogen-enhanced localized plasticity theory.
机译:了解多相金属中氢辅助断裂的微观机制具有重大的科学和工程意义。通过结合使用扫描电子显微镜(SEM),扫描隧道显微镜(STM),原子力显微镜(AFM)和磁力显微镜(MFM),预充氢的超级双相不锈钢2507的断裂表面的微观形态和微裂纹的形成从微米级到纳米级都有特征。结果表明,断裂表面在微观尺度上由具有河状图案的准脆性小面组成,在纳米尺度上表现出粗糙的不规则图案或显着的准周期性波纹状,这与高度局部塑性变形有关。微裂纹优先在铁素体相中引发和传播,并被奥氏体相的边界阻止或偏转。根据实验结果和氢增强局部可塑性理论,探讨了超级双相不锈钢中氢辅助裂解的机理。

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