[2] |
Rosset W S D, Montgomery J S. Cobalt-base alloy gun barrel study. Wear, 2014, 316(1-2):119
|
[3] |
Sopok S, Rickard C, Dunn S. Thermal-chemical-mechanical gun bore erosion of an advanced artillery system part one:theories and mechanisms. Wear, 2005, 258(1-4):659
|
[4] |
Kaya A, Onac C, Alpoguz H K, et al. Removal of Cr (VI) through calixarene based polymer inclusion membrane from chrome plating bath water. Chem Eng J, 2016, 283:141
|
[5] |
Patton N. Greener hard chromium plating. NASF Surf Technol White Pap, 2014, 78(10):1
|
[7] |
Czerwinski F. Heat Treatment——Conventional and Novel Applications. Rijeka:InTech, 2012
|
[8] |
Qiang Y H, Ge S R, Xue Q J. Microstructure and tribological properties of complex nitrocarburized steel. J Mater Process Technol, 2000, 101(1-3):180
|
[9] |
Cai W, Meng F N, Gao X Y, et al. Effect of QPQ nitriding time on wear and corrosion behavior of 45 carbon steel. Appl Surf Sci, 2012, 261:411
|
[10] |
Khan T, Tamura Y, Yamamoto H, et al. Friction and wear mechanisms in boundary lubricated oxy-nitrided treated samples. Wear, 2016, 368-369:101
|
[11] |
Flodström I. Nitrocarburizing and High Temperature Nitriding of Steels for Bearing Applications[Dissertation]. Göteborg:Chalmers University of Technology, 2012
|
[13] |
Xie H M, Jiang B, Liu B, et al. An investigation on the tribological performances of the SiO2/MoS2 hybrid nanofluids for magnesium alloy-steel contacts. Nanoscale Res Lett, 2016, 11:329
|
[14] |
Yan M F, Liu R L. Influence of process time on microstructure and properties of 17-4PH steel plasma nitrocarburized with rare earths addition at low temperature. Appl Surf Sci, 2010, 256(20):6065
|
[15] |
Li G J, Wang J, Peng Q, et al. Influence of salt bath nitrocarburizing and post-oxidation process on surface microstructure evolution of 17-4PH stainless steel. J Mater Process Technol, 2008, 207(1-3):187
|
[16] |
Marušić K, Otmačić H, Landek D, et al. Modification of carbon steel surface by the Tenifer® process of nitrocarburizing and postoxidation. Surf Coat Technol, 2006, 201(6):3415
|
[17] |
Barrau O, Boher C, Vergne C, et al. Investigations of friction and wear mechanisms of hot forging tool steels//6th International Tooling Conference. Karlstad, 2002:95
|
[18] |
Steiner T, Mittemeijer E J. Alloying element nitride development in ferritic Fe-based materials upon nitriding:a review. J Mater Eng Perform, 2016, 25(6):2091
|
[19] |
Mittemeijer E J, Somers M A J. Thermochemical Surface Engineering of Steels. United Kingdom:Woodhead Publishing, 2015
|
[20] |
Batchelor A W, Stachowiak G W, Cameron A. The relationship between oxide films and the wear of steels. Wear, 1986, 113(2):203
|
[21] |
Hager Jr C H, Evans R D. Friction and wear properties of black oxide surfaces in rolling/sliding contacts. Wear, 2015, 338-339:221
|
[22] |
Evans R D, Barr T A, Houpert L, et al. Prevention of smearing damage in cylindrical roller bearings. Tribology Trans, 2013, 56(5):703
|
[24] |
Obaldia E E D, Herrera S, Grunenfelder L K, et al. Competing mechanisms in the wear resistance behavior of biomineralized rodlike microstructures. J Mech Phys Solids, 2016, 96:511
|
[25] |
Chicot D, Roudet F, Zaoui A, et al. Influence of visco-elastoplastic properties of magnetite on the elastic modulus:multicyclic indentation and theoretical studies. Mater Chem Phys, 2010, 119(1-2):75
|
[26] |
Chen J S, Yu C, Lu H. Phase stability, magnetism, elastic properties and hardness of binary iron nitrides from first principles. J Alloys Compd, 2015, 625:224
|
[27] |
Bhushan B. Principles and Applications of Tribology. 2nd Ed. Chichester:Wiley, 2013
|
[28] |
Hoppe S. Fundamentals and applications of the combination of plasma nitrocarburizing and oxidizing. Surf Coat Technol, 1998, 98(1-3):1199
|
[29] |
Vayer M, Reynaud I, Erre R. XPS characterisations of passive films formed on martensitic stainless steel:qualitative and quantitative investigations. J Mater Sci, 2000, 35(10):2581
|