The role of titanium in the initiation of localized corrosion of stainless steel 444

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作者
Samantha Michelle Gateman
Lisa Irene Stephens
Samuel Charles Perry
Robert Lacasse
Robert Schulz
Janine Mauzeroll
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[1] McGill University,Laboratory for Electrochemical Reactive Imaging and Detection of Biological Systems
[2] Institut de recherche d’Hydro-Quebec,undefined
来源
npj Materials Degradation | / 2卷
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摘要
Titanium has been added to ferritic stainless steels to combat the detrimental effects of intergranular corrosion. While this has proven to be a successful strategy, we have found that the resulting Ti-rich inclusions present on the surface play a significant role in the initiation of other forms of localized corrosion. Herein, we report the effect of these inclusions on the localized corrosion of a stainless steel using macro and micro electrochemical techniques. Through the use of scanning electrochemical microscopy, we observe the microgalvanic couple formed between the conductive inclusions and passivated metal matrix. The difference in local reactivity across the material’s surface was quantified using a 3D finite element model specifically built to respect the geometry of the corrosion-initiating features. Combined with electron microscopy and micro elemental analysis, localization of other alloying elements has been reported to provide new insight on their significance in localized corrosion resistance.
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[1]  
Burkert A(2014)Technical and economical stainless steel alternatives for civil engineering applications Mater. Corros. 65 1080-1095
[2]  
Lehmann J(2016)Towards a reliable determination of the intergranular corrosion rate of austenitic stainless steel in oxidizing media Corros. Sci. 107 60-75
[3]  
Burkert A(2007)Influence of Ti, C and N concentration on the intergranular corrosion behaviour of AISI 316Ti and 321 stainless steels Acta Mater. 55 2239-2251
[4]  
Mietz J(2016)Formation of inclusions in Ti-stabilized 17Cr austenitic stainless steel Metall. Mater. Trans. B 47 3274-3284
[5]  
Gümpel P(2015)Effect of precipitation on intergranular corrosion resistance of 430 ferritic stainless steel J. Iron Steel Res. Int. 22 1062-1068
[6]  
Gwinner B(2015)Passivity breakdown, pit initiation and propagation of pits in metallic materials—review Corros. Sci. 90 5-22
[7]  
Pardo A(2008)Pitting corrosion behaviour of austenitic stainless steels—combining effects of Mn and Mo additions Corros. Sci. 50 1796-1806
[8]  
Yin X(2010)Anisotropic 3D growth of corrosion pits initiated at MnS inclusions for A537 steel during corrosion fatigue Corros. Sci. 52 2867-2877
[9]  
Huang X(1992)The initiation of pitting corrosion on austenitic stainless steel: on the role and importance of sulphide inclusions Corros. Sci. 33 457-474
[10]  
Wang D(2014)Pitting corrosion of very clean type 304 stainless steel Corrosion 70 146-155