The Effect of Severe Plastic Deformation on the Corrosion Resistance of AISI Type 304L Stainless Steel

被引:0
作者
Gopinath Shit
S. Ningshen
机构
[1] Homi Bhaba National Institute,Corrosion Science and Technology Division, Metallurgy and Materials Group
[2] Indira Gandhi Centre for Atomic Research,undefined
来源
Journal of Materials Engineering and Performance | 2020年 / 29卷
关键词
corrosion; microstructure; phase transformation; Stainless steel; severe plastic deformation;
D O I
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中图分类号
学科分类号
摘要
The AISI type 304L stainless steel (SS) was solution annealed at 1050 °C and cryo-rolled at liquid nitrogen (L-N2) temperature (77 K) under severe plastic deformation (SPD). The thickness reduction through cryo-rolling plastic deformation was carried out up to 90% (designated as CR-90) of initial thickness. The cryo-rolling during rolling at liquid N2 temperature (77 K), resulted in transformation induced plastic deformation of the austenite γ-phase into α’- martensite phase. The phase transformation was characterized by x-ray diffraction (XRD) and saturation magnetization (Ms) measurement. The microstructure was measured by using optical microscopy (OM), scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The XRD peak positions confirmed the martensite (α’) phase formation. Saturation magnetization (Ms) value of the cryo-rolled specimens shows increasing linearity with cryo-rolling, and transformed to bct martensite (α’). The measured corrosion rate of the cryo-rolled specimens as per ASTM A-262 practice-C test (Huey test) ranges from 6.6 mpy or 0.167 mm/yr (CR 0) to 12.9 mpy or 0.328 mm/yr (CR 90), indicating the effects of severe deformation of strain-induced martensite with the cryo-rolling. Further, the role of severe deformation of strain-induced martensite with the cryo-rolling on AISI type 304L SS and also influence on the corrosion resistance are investigated in detail. The deformation microstructure roles, i.e., the phases and volume percentage induced by the different percentage of the cryo-rolling that influences the corrosion resistance properties and corresponding corrosion resistance in nitric acid have been investigated.
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页码:5696 / 5709
页数:13
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共 211 条
  • [1] Krauss G(1971)The Morphology of Martensite in Iron Alloys Metall. Trans. 2 2343-2357
  • [2] Marder AR(1998)Low-Temperature Ion Nitriding Of Austenitic Stainless Steels Mater. Trans. 39 1046-22
  • [3] Yasumaru N(2008)Effects of Temperature Cycling And Nitrogen on the Stability of Microstructures in Austenitic Stainless Steels Mater. Character. 59 18-922
  • [4] Yuan ZZ(2015)Charpy Impact Properties Of Stainless Steel Weldment in Liquefied Natural Gas Pipelines: Effect of Low Temperatures Mater. Des. 65 914-281
  • [5] Dai QX(2010)Pitting Intergranular Corrosion Resistance of AISI Type 301LN Stainless Steels J. Mater. Eng. Perform. 19 274-216
  • [6] Zhang Q(2008)Tensile and Compressive Properties of AISI 304L Stainless Steel Subjected to Equal Channel Angular Pressing Mater. Sci. Eng., A 475 207-385
  • [7] Kim JH(2014)Martensitic Transformation Induced by Cold Deformation of Lean Duplex Stainless Steel Uns S32304 Mat. Res. 1 381-544
  • [8] Choi SW(2016)Optimization of Heat Treatments for Reversion of Strain-Induced Martensite in 304L SS Explosive Clad J. Mater. Eng. Perform. 25 536-5768
  • [9] Park DH(2015)Martensitic Transformation in AISI, D2 Tool Steel J. Mater. Sci. 50 5758-473
  • [10] Lee JM(2019)EBSD Investigation of Microstructure Evolution during Cryogenic Rolling of Type 321 Metastable Austenitic Steel Mater. Sci. Eng., A 745 460-97