Celis, J.-P., Ponthiaux, P., European Federation of Corrosion., Testing tribocorrosion of passivating materials supporting research and industrial innovation : handbook. 2012, Maney Pub (accessed December 2, 2019) https://books.google.fr/books?id=QzkrDwAAQBAJ.
Landolt, D., Mischler, S., Tribocorrosion of passive metals and coatings. 2011, Woodhead Publishing, Cambridge, UK, 10.1533/9780857093738.
Landolt, D., Mischler, S., Stemp, M., Electrochemical methods in tribocorrosion: a critical appraisal. Electrochim. Acta 46 (2001), 3913–3929, 10.1016/S0013-4686(01)00679-X.
Mischler, S., Debaud, S., Landolt, D., Wear-accelerated corrosion of passive metals in tribocorrosion systems. J. Electrochem. Soc. 145 (1998), 750–758, 10.1149/1.1838341.
Guadalupe Maldonado, S., Mischler, S., Cantoni, M., Chitty, W.J., Falcand, C., Hertz, D., Mechanical and chemical mechanisms in the tribocorrosion of a Stellite type alloy. Wear 308 (2013), 213–221, 10.1016/j.wear.2013.04.007.
Cao, S., Guadalupe Maldonado, S., Mischler, S., Tribocorrosion of passive metals in the mixed lubrication regime: theoretical model and application to metal-on-metal artificial hip joints. Wear 324–325 (2015), 55–63, 10.1016/j.wear.2014.12.003.
Asami, K., Hashimoto, K., An X-ray photo-electron spectroscopic study of surface treatments of stainless steels. Corrosion Sci. 19 (1979), 1007–1017, 10.1016/S0010-938X(79)80091-8.
Pardo, A., Merino, M.C., Coy, A.E., Viejo, F., Arrabal, R., Matykina, E., Effect of Mo and Mn additions on the corrosion behaviour of AISI 304 and 316 stainless steels in H2SO4. Corrosion Sci. 50 (2008), 780–794, 10.1016/j.corsci.2007.11.004.
Yassar, R.S., Scudiero, L., Alamr, A.S., Bahr, D.F., Norton, M.G., Microstructure-mechanical and chemical behavior relationships in passive thin films. Thin Solid Films 518 (2010), 2757–2763, 10.1016/j.tsf.2009.08.032.
Alamr, A., Bahr, D.F., Jacroux, M., Effects of alloy and solution chemistry on the fracture of passive films on austenitic stainless steel. Corrosion Sci. 48 (2006), 925–936, 10.1016/j.corsci.2005.02.018.
Leban, M.B., Mikyška, Č., Kosec, T., Markoli, B., Kovač, J., The effect of surface roughness on the corrosion properties of type AISI 304 stainless steel in diluted NaCl and urban rain solution. J. Mater. Eng. Perform. 23 (2014), 1695–1702, 10.1007/s11665-014-0940-9.
David Tabor, S.D., Friction, lubrication, and wear. Rothbart, H., Brown, T.H., (eds.) Mech. Des. Handbook, Meas. Anal. Control Dyn. Syst., second ed., 2006, McGraw-Hill Education, New York, 900.
Burstein, G.T., Vines, S.P., Repetitive nucleation of corrosion pits on stainless steel and the effects of surface roughness. J. Electrochem. Soc. 148 (2001), B504–B516, 10.1149/1.1416503.
Latifi, A., Imani, M., Khorasani, M.T., Joupari, M.D., Electrochemical and chemical methods for improving surface characteristics of 316L stainless steel for biomedical applications. Surf. Coating. Technol. 221 (2013), 1–12, 10.1016/j.surfcoat.2013.01.020.
Olugbade, T., Lu, J., Enhanced corrosion properties of nanostructured 316 stainless steel in 0.6 M NaCl solution. J. Bio- Tribo-Corrosion., 5, 2019, 38, 10.1007/s40735-019-0235-7.
Electropolishing vs, Passivation – choosing the right finish. 2018, Birmingham Fasten https://www.bhamfast.com/electropolishing-passivation/ (accessed November 19, 2019).
ASTM A380/A380M - 17 standard practice for cleaning, descaling, and passivation of stainless steel parts, equipment, and systems. https://doi.org/10.1520/A0380_A0380M-17, 2017.
ASTM A967/A967M - 17 standard specification for chemical passivation treatments for stainless steel parts. https://doi.org/10.1520/A0967_A0967M-17, 2017.
Abbott, A.P., Capper, G., McKenzie, K.J., Glidle, A., Ryder, K.S., Electropolishing of stainless steels in a choline chloride based ionic liquid: an electrochemical study with surface characterisation using SEM and atomic force microscopy. 2006, Euro Inox, Brussels, 10.1039/b607763n.
Popov, K., Grgur, B., Djokić, S.S., Fundamental aspects of electrometallurgy. 2002, Kluwer Academic Publishers, New York, NY, USA, 10.1007/b118178.
Understanding the cost (and value) of electropolishing. 2019, Electro-Glo Distrib https://www.electro-glo.com/understanding-the-cost-and-value-of-electropolishing/ accessed November 19, 2019.
Gallitelli, D., Retraint, D., Rouhaud, E., Comparison between conventional shot peening (SP) and surface mechanical attrition treatment (SMAT) on a titanium alloy. Adv. Mater. Res. 996 (2014), 964–968 https://doi.org/10.4028/www.scientific.net/AMR.996.964.
Heydari Astaraee, A., Miresmaeili, R., Bagherifard, S., Guagliano, M., Aliofkhazraei, M., Incorporating the principles of shot peening for a better understanding of surface mechanical attrition treatment (SMAT) by simulations and experiments. Mater. Des. 116 (2017), 365–373, 10.1016/j.matdes.2016.12.045.
Balusamy, T., Sankara Narayanan, T.S.N., Ravichandran, K., Park, I.S., Lee, M.H., Influence of surface mechanical attrition treatment (SMAT) on the corrosion behaviour of AISI 304 stainless steel. Corrosion Sci. 74 (2013), 332–344, 10.1016/j.corsci.2013.04.056.
Chen, A.Y., Hu, W.F., Wang, D., Zhu, Y.K., Wang, P., Yang, J.H., Wang, X.Y., Gu, J.F., Lu, J., Improving the intergranular corrosion resistance of austenitic stainless steel by high density twinned structure. Scripta Mater. 130 (2017), 264–268, 10.1016/j.scriptamat.2016.11.032.
Lee, S.J., Lai, J.J., The effects of electropolishing (EP) process parameters on corrosion resistance of 316L stainless steel. J. Mater. Process. Technol. 140 (2003), 206–210, 10.1016/S0924-0136(03)00785-4.
Hilbert, L.R., Bagge-Ravn, D., Kold, J., Gram, L., Influence of surface roughness of stainless steel on microbial adhesion and corrosion resistance. Int. Biodeterior. Biodegrad. 52 (2003), 175–185, 10.1016/S0964-8305(03)00104-5.
Geng, S., Sun, J., Guo, L., Effect of sandblasting and subsequent acid pickling and passivation on the microstructure and corrosion behavior of 316L stainless steel. Mater. Des. 88 (2015), 1–7, 10.1016/j.matdes.2015.08.113.
Zheng, Z.B., Zheng, Y.G., Effects of surface treatments on the corrosion and erosion-corrosion of 304 stainless steel in 3.5% NaCl solution. Corrosion Sci. 112 (2016), 657–668, 10.1016/j.corsci.2016.09.005.
Sun, Y., Bailey, R., Improvement in tribocorrosion behavior of 304 stainless steel by surface mechanical attrition treatment. Surf. Coating. Technol. 253 (2014), 284–291, 10.1016/j.surfcoat.2014.05.057.
Quaghebeur, M., Micro-undulation | Packo inox-surface treatment. https://www.electropolish.be/en/surface-treatments/per-surface-treatment/micro-ondulation accessed December 2, 2019.
Coelho, L.B., Kossman, S., Mejias, A., Noirfalise, X., Montagne, A., Van Gorp, A., Poorteman, M., Olivier, M.-G., Mechanical and corrosion characterization of industrially treated 316L stainless steel surfaces. Surf. Coating. Technol., 2019, 125175, 10.1016/j.surfcoat.2019.125175.
A01 Committee, ASTM A480/A480M-18a, standard specification for general requirements for flat-rolled stainless and heat-resisting steel plate. 2018, Sheet, and Strip, West Conshohocken, PA, 10.1520/A0480_A0480M-18A.
2B, 2D and cold rolled finishes. https://www.assda.asn.au/technical-info/surface-finishes/2b-2d-and-ba-cold-rolled-finishes accessed July 29, 2019.
Sun, Y., Rana, V., Tribocorrosion behaviour of AISI 304 stainless steel in 0.5 M NaCl solution. Mater. Chem. Phys. 129 (2011), 138–147, 10.1016/j.matchemphys.2011.03.063.
Bidiville, A., Favero, M., Stadelmann, P., Mischler, S., Effect of surface chemistry on the mechanical response of metals in sliding tribocorrosion systems. Wear 263 (2007), 207–217, 10.1016/j.wear.2007.01.066.
Favero, M., Stadelmann, P., Mischler, S., Effect of the applied potential of the near surface microstructure of a 316L steel submitted to tribocorrosion in sulfuric acid. J. Phys. D Appl. Phys. 39 (2006), 3175–3183, 10.1088/0022-3727/39/15/S07.
Uhlig, H.H., Mechanism of fretting corrosion. J. Appl. Mech. 76 (1954), 401–407.
Bhushan, B., Introduction to tribology. second ed., 2013, John Wiley & Sons, Ltd, Chichester, UK, 10.1002/9781118403259.
Bowden, F.P., Tabor, D., The Friction and Lubrication of Solids. 2001, Clarendon Press.
Takadoum, J., Roques-Carmes, C., Influence of the oxidation activity of metals on friction and wear of ceramic-metal systems. Surf. Coating. Technol. 52 (1992), 153–158, 10.1016/0257-8972(92)90041-8.
Archard, J.F., The temperature of rubbing surfaces. Wear 2 (1959), 438–455, 10.1016/0043-1648(59)90159-0.
Bogdanovich, P.N., Tkachuk, D.V., Temperature distribution over contact area and “hot spots” in rubbing solid contact. Tribol. Int. 39 (2006), 1355–1360, 10.1016/j.triboint.2005.10.008.
Jiang, J., Stack, M.M., Modelling sliding wear: from dry to wet environments. Wear 261 (2006), 954–965, 10.1016/j.wear.2006.03.028.
Staia, M.H., Puchi Cabrera, E.S., Iost, A., Zairi, A., Belayer, S., Van Gorp, A., Tribological response of AA 2024-T3 aluminium alloy coated with a DLC duplex coating. Tribol. Int. 85 (2015), 74–87, 10.1016/J.TRIBOINT.2014.12.007.
Archard, J.F., Contact and rubbing of flat surfaces. J. Appl. Phys. 24 (1953), 981–988, 10.1063/1.1721448.
Tingle, E.D., The importance of surface oxide films in the friction and lubrication of metals. Part I. - the dry friction of surfaces freshly exposed to air. Trans. Faraday Soc. 46 (1950), 93–102, 10.1039/TF9504600093.
Kestin, J., Khalifa, H.E., Correia, R.J., Tables of the dynamic and kinematic viscosity of aqueous NaCl solutions in the temperature range 20–150 °C and the pressure range 0.1–35 MPa. J. Phys. Chem. Ref. Data 10 (1981), 71–88, 10.1063/1.555641.
Landolt, D., Mischler, S., Stemp, M., Barril, S., Third body effects and material fluxes in tribocorrosion systems involving a sliding contact. Wear 256 (2004), 517–524, 10.1016/S0043-1648(03)00561-1.
Jiang, J., Stack, M.M., Neville, A., Modelling the tribo-corrosion interaction in aqueous sliding conditions. Tribol. Int. 35 (2002), 669–679, 10.1016/S0301-679X(02)00058-0.
Ilevbare, G.O., Burstein, G.T., Role of alloyed molybdenum in the inhibition of pitting corrosion in stainless steels. Corrosion Sci. 43 (2001), 485–513, 10.1016/S0010-938X(00)00086-X.
Sun, Y., Bailey, R., Effect of sliding conditions on micropitting behaviour of AISI 304 stainless steel in chloride containing solution. Corrosion Sci. 139 (2018), 197–205, 10.1016/j.corsci.2018.05.004.
Oldfield, J.W., Sutton, W.H., Crevice corrosion of stainless steels: I. A Mathematical model. Br. Corrosion J. 13 (1978), 13–22, 10.1179/000705978798358671.
Fratesi, R., Statistical estimate of the pitting potential of AISI 316L stainless steel in 3. 5% NaCl measured by means of two electrochemical methods. Corrosion 41 (1985), 114–117, 10.5006/1.3581972.
Cabrini, M., Lorenzi, S., Pastore, T., Pellegrini, S., Burattini, M., Miglio, R., Study of the corrosion resistance of austenitic stainless steels during conversion of waste to biofuel. Materials (Basel) 10 (2017), 1–14, 10.3390/ma10030325.
Prošek, T., Novák, P., Initiation and propagation of stainless steel pitting corrosion under heat flux. Mater. Corros. 54 (2003), 933–939, 10.1002/maco.200303760.
Zhang, T.Y., Qian, C.F., Interaction of a screw dislocation with a thin-film-covered mode III crack. Acta Mater. 44 (1996), 4513–4520, 10.1016/1359-6454(96)00066-3.
Landolt, D., Electrochemical and materials aspects of tribocorrosion systems. J. Phys. D Appl. Phys. 39 (2006), 3121–3127, 10.1088/0022-3727/39/15/S01.
Olsson, C.O.A., Landolt, D., Passive films on stainless steels—chemistry, structure and growth. Electrochim. Acta 48 (2003), 1093–1104, 10.1016/S0013-4686(02)00841-1.
Landolt, D., Fundamental aspects of electropolishing. Electrochim. Acta 32 (1987), 1–11, 10.1016/0013-4686(87)87001-9.
Li, W., Li, D.Y., Variations of work function and corrosion behaviors of deformed copper surfaces. Appl. Surf. Sci. 240 (2005), 388–395, 10.1016/j.apsusc.2004.07.017.
Lu, A.Q., Zhang, Y., Li, Y., Liu, G., Zang, Q.H., Liu, C.M., Effect of nanocrystalline and twin boundaries on corrosion behavior of 316L stainless steel using SMAT. Acta Metall. Sin. (English Lett. 19 (2006), 183–189, 10.1016/S1006-7191(06)60042-2.