Chemical and Physical Effects of Fluoride on the Corrosion of Austenitic Stainless Steel in Polluted Phosphoric Acid
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[1] A. Zarrouk,et al. Effect of fluoride on corrosion behavior of UNS N08904 stainless steel in polluted phosphoric acid , 2018, Journal of Molecular Liquids.
[2] R. Ballinger,et al. Corrosion behavior of 904L austenitic stainless steel in hydrofluoric acid , 2018, RSC advances.
[3] C. Dong,et al. Passivation and electrochemical behavior of 316L stainless steel in chlorinated simulated concrete pore solution , 2017 .
[4] Florian Gossenberger,et al. Hydrogen and halide co-adsorption on Pt(111) in an electrochemical environment: a computational perspective , 2016 .
[5] M. Multigner,et al. In vitro corrosion behaviour of surgical 316LVM stainless steel modified by Si+ ion implantation – An electrochemical impedance spectroscopy study , 2016 .
[6] B. Valdez,et al. The phosphoric acid industry: equipment, materials, and corrosion , 2016 .
[7] H. Idrissi,et al. Effect of abrasive particles on electrochemical behaviour of passive film formed on Alloy 59 in contaminated phosphoric acid , 2016 .
[8] Yi Zhang,et al. Preparation of Cr2O3-based pigments with high NIR reflectance via thermal decomposition of CrOOH , 2015 .
[9] V. Salinas-Bravo,et al. Corrosion Performance of Fe-Cr-Ni Alloys in Artificial Saliva and Mouthwash Solution , 2015, Bioinorganic chemistry and applications.
[10] J. Brugger,et al. Thermodynamic Modeling of Poorly Complexing Metals in Concentrated Electrolyte Solutions: An X-Ray Absorption and UV-Vis Spectroscopic Study of Ni(II) in the NiCl2-MgCl2-H2O System , 2015, PloS one.
[11] F. Crea,et al. SALMO and S3M: A Saliva Model and a Single Saliva Salt Model for Equilibrium Studies , 2015, Bioinorganic chemistry and applications.
[12] J. Soltis. Passivity breakdown, pit initiation and propagation of pits in metallic materials – Review , 2015 .
[13] P. Refait,et al. Passivity of Sanicro28 (UNS N-08028) stainless steel in polluted phosphoric acid at different temperatures studied by electrochemical impedance spectroscopy and Mott–Schottky analysis , 2014 .
[14] Andrew Flanagan,et al. A Review on Adsorption of Fluoride from Aqueous Solution , 2014, Materials.
[15] Tao Zhang,et al. Effect of Cl− on the Properties of the Passive Films Formed on 316L Stainless Steel in Acidic Solution , 2014 .
[16] R. Akid,et al. Effect of temperature on passive film formation of UNS N08031 Cr–Ni alloy in phosphoric acid contaminated with different aggressive anions , 2013 .
[17] T. Németh,et al. The use of UV‐VIS‐NIR reflectance spectroscopy to identify iron minerals , 2013 .
[18] R. M. Fernández-Domene,et al. Corrosion Behaviour of a Highly Alloyed Austenitic Alloy UB6 in Contaminated Phosphoric Acid , 2013 .
[19] P. Maruthamuthu,et al. Photocatalytic degradation of pentachlorophenol in aqueous solution by visible light sensitive NF-codoped TiO2 photocatalyst , 2013 .
[20] Alireza Saeed-Akbari,et al. Nitrogen in chromium–manganese stainless steels: a review on the evaluation of stacking fault energy by computational thermodynamics , 2013, Science and technology of advanced materials.
[21] F. Heakal,et al. Electrochemical Corrosion and Passivation Behavior of Titanium and Its Ti-6Al-4V Alloy in Low and Highly Concentrated HBr Solutions , 2011 .
[22] A. Iversen,et al. Aqueous Corrosion of Stainless Steels , 2010 .
[23] G. T. Burstein,et al. Passivity and Localized Corrosion , 2010 .
[24] G. T. Burstein. 2.02 – Passivity and Localized Corrosion* , 2010 .
[25] J. Richardson. Corrosion in Hydrogen Halides and Hydrohalic Acids , 2010 .
[26] I. Arčon,et al. Soil humic acids may favour the persistence of hexavalent chromium in soil. , 2009, Environmental pollution.
[27] Desheng Kong. The influence of fluoride on the physicochemical properties of anodic oxide films formed on titanium surfaces. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[28] R. Basséguy,et al. Classic and local analysis of corrosion behaviour of graphite and stainless steels in polluted phosphoric acid , 2007 .
[29] M. Hajji,et al. Study of corrosion–erosion behaviour of stainless alloys in industrial phosphoric acid medium , 2006 .
[30] K. Kuroda,et al. Efforts to Save Nickel in Austenitic Stainless Steels , 2006 .
[31] F. Di Quarto,et al. Semiconductor electrochemistry approach to passivity and passivity breakdown of metals and metallic alloys , 2004 .
[32] Dai Qi-xun,et al. Stacking fault energy of cryogenic austenitic steels , 2002 .
[33] S. R. Pillai. High Temperature Corrosion of Austenitic Stainless Steels , 2002 .
[34] P. Borthen,et al. X‐Ray Photoelectron Spectroscopic Examinations of Electrochemically Formed Passive Layers on Ni‐Cr Alloys , 1997 .
[35] U. Schwertmann,et al. The Iron Oxides: Structure, Properties, Reactions, Occurrences and Uses , 2003 .
[36] A. F. Padilha,et al. Determination of stacking fault energy of austenite in a duplex stainless steel , 1996 .
[37] P. Marcus. On some fundamental factors in the effect of alloying elements on passivation of alloys , 1994 .
[38] A. Bellaouchou,et al. Corrosion Behavior of Stainless Steel in Phosphoric Acid Polluted by Sulfide Ions , 1993 .
[39] A. Schneider,et al. AES analysis of pits and passive films formed on FeCr FeMo and FeCrMo alloys , 1990 .
[40] M. Lenglet,et al. UV-Vis-NIR and FTIR Reflectance Studies of the Initial Stage of Oxidation of 80 Ni-20 Cr Alloy. , 1989 .
[41] A. Guenbour,et al. On the Mechanism for Improved Passivation by Addition of Molybdenum to Austenitic Stainless Steels in O-Phosphoric Acid , 1988 .
[42] D. Eliezer,et al. Nature of the γ and γ∗ phases in austenitic stainless steels cathodically charged with hydrogen , 1988 .
[43] G. Hack. Discussion of “Microdistribution of Cerium in Steel”⋆ , 1988 .
[44] N. Bui,et al. Electrochemical study of corrosion-abrasion of stainless steels in phosphoric acids , 1988 .
[45] D. Landolt,et al. The influence of minor alloying elements on the passivation behaviour of iron-chromium alloys in HCl , 1985 .
[46] R. Newman. The dissolution and passivation kinetics of stainless alloys containing molybdenum—1. Coulometric studies of FeCr and FeCrMo alloys , 1985 .
[47] K. Ogura,et al. Pit Formation in the Cathodic Polarization of Passive Iron IV. Repair Mechanism by Molybdate, Chromate and Tungstate , 1984 .
[48] Becker Pierre,et al. Phosphates and phosphoric acid: raw materials, technology, and economics of the wet process. , 1983 .
[49] R. W. Kirchner. An Evaluation of Nickel-rich Alloys In Wet Process Phosphoric Acid , 1971 .