In situ X-ray diffraction (XRD) was used to compare nitrogen low-energy ion implantation (LEII) into austenitic stainless steel 316Ti and super austenitic stainless steel 904L. While the diffusion and layer growth were very similar, as derived from the decreasing intensity of the substrate reflection, strong variations in the observed lattice expansion—
Stephan Mändl, Darina Manova
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Optimal Design of the Austenitic Stainless-Steel Composition Based on Machine Learning and Genetic Algorithm. [PDF]
Liu C, Wang X, Cai W, Yang J, Su H.
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Bioactivity, Cytotoxicity, and Tribological Studies of Nickel-Free Austenitic Stainless Steel Obtained via Powder Metallurgy Route. [PDF]
Romanczuk-Ruszuk E +5 more
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Effect of Deformation Conditions on Strain-Induced Precipitation of 7Mo Super-Austenitic Stainless Steel. [PDF]
Xu S, He J, Zhang R, Zhang F, Wang X.
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The Optimized Homogenization Process of Cast 7Mo Super Austenitic Stainless Steel. [PDF]
Zhang R, He J, Xu S, Zhang F, Wang X.
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High-Temperature Oxidation Behaviour of CrSi Coatings on 316 Austenitic Stainless Steel. [PDF]
Gurtaran M, Zhang Z, Li X, Dong H.
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On the orientation dependence of ion-induced phase transformations in austenitic stainless steel. [PDF]
Whiteside J +3 more
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Modeling Corrosion Product Film Formation and Hydrogen Diffusion at the Crack Tip of Austenitic Stainless Steel. [PDF]
Yang F, Zhang J, Zhang Y.
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Measurements and predictions of diffusible hydrogen escape and absorption in catholically charged 316LN austenitic stainless steel. [PDF]
Weihrauch M, Patel M, Patterson EA.
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