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Research Article

Improving the wear and corrosion resistance of martensitic stainless steel by paste boriding treatment

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Pages 300-309 | Received 06 May 2022, Accepted 30 Jul 2022, Published online: 11 Aug 2022

References

  • Campos I, Ramírez G, Figueroa U, et al. Evaluation of boron mobility on the phases FeB, Fe2B and diffusion zone in AISI 1045 and M2 steels. Appl Surf Sci. 2007;253:3469–3475.
  • Dybkov VI, Lengauer W, Barmak K. Formation of boride layers at the Fe-10% Cr alloy-boron interface.J Alloys Compd. 2005;398:113–122.
  • Uslu I, Comert H, Ipek M, et al. Evaluation of borides formed on AISI P20 steel. Mater Des. 2007;28:55–61.
  • Keddam M, Ortiz-Dominguez M, Elias-Espinosa M, et al. Kinetic investigation and wear properties of Fe2B layers on AISI 12L14 steel. Metall Mater Trans A. 2018;49:1895–1907.
  • Atik E, Yunker U, Meric C. The effects of conventional heat treatment and boronizing on abrasive wear and corrosion of SAE 1010, SAE 1040, D2 and 304 steels. Tribol Int. 2003;36:155–161.
  • Kheyrodin M, Habibolahzadeh A, Mousavi SB. Wear and corrosion behaviors of duplex surface treated 316L austenitic stainless steel via combination of boriding and chromizing. Prot Met Phys Chem Surf. 2017;53:105–111.
  • Kartal G, Kahvecioglu O, Timur S. Investigating the morphology and corrosion behavior of electrochemically borided steel. Surf Coat Technol. 2006;200:3590–3593.
  • Rodríguez-Castro G, Campos-Silva I, Martínez-Trinidad J, et al. Effect of boriding on the mechanical properties of AISI 1045 steel. Adv Mater Res. 2009;65:63–68.
  • Tavakoli H, Khoie SM. An electrochemical study of the corrosion resistance of boride coating obtained by thermo-reactive diffusion. Mater Chem Phys. 2010;124:1134–1138.
  • Rodríguez-Castro G, Campos-Silva I, Chávez-Gutiérrez E, et al. Mechanical properties of FeB and Fe2B layers estimated by Berkovich nanoindentation on tool borided steel. Surf Coat Technol. 2013;215:291–299.
  • Campos I, Oseguera J, Figueroa U, et al. Kinetic study of boron diffusion in the paste-boriding process. Mater Sci Eng A. 2003;352:261–265.
  • Chen T, Koyama S. Influence of boriding temperature on microstructure and tribological. Solid State Sci. 2020;107:106369.
  • Makuch N, Dziarski P. Importance of trimethyl borate temperature used during gas boriding for microstructure, nanomechanical properties and residual stresses distribution on the cross-section of the produced layer. Surf Coat Technol. 2021;405:126508.
  • Bartsch K, Leonhardt A. Formation of iron boride layers on steel by dc-plasma boriding and deposition processes. Surf Coat Technol. 1999;116–119:386–390.
  • Yang HP, Wu XC, Min YA, et al. Plasma boriding of high strength alloy steel with nanostructured surface layer at low temperature assisted by air blast shot peening. Surf Coat Technol. 2013;228:229–233.
  • Campos-Silva I, Ortiz-Dominguez M, Martínez-Trinidad J, et al. Properties and characterization of hard coatings obtained by boriding: an overview. Defect Diffus Forum. 2010;297–301:1284–1289.
  • Ramirez G, Campos I, Balankin A. Fracture toughness of iron boride layers obtained by paste boriding process. Mater Sci Forum. 2007;553:21–26.
  • Doñu Ruiz MA, López Perrusquia N, Sánchez Huerta D, et al. Growth kinetics of boride coatings formed at the surface AISI M2 during dehydrated paste pack boriding. Thin Solid Films. 2015;596:147–154.
  • He XL, Xiao HP, Fevzi Ozaydin M, et al. Low-temperature boriding of high-carbon steel. Surf Coat Technol. 2015;263:21–26.
  • Atul SC, Adalarasan R, Santhanakumar M. Study on slurry paste boronizing of 410 martensitic stainless steel using Taguchi based desirability analysis (TDA). Int J Manuf Mater Mech Eng. 2015;5:64–77.
  • Campos I, Palomar M, Amador A, et al. Evaluation of the corrosion resistance of iron boride coatings obtained by paste boriding process. Surf Coat Technol. 2006;201:2438–2442.
  • Kariofillis GK, Kiourtsidis GE, Tsipas DN. Corrosion behavior of borided AISI H13 hot work steel. Surf Coat Technol. 2006;201:19–24.
  • Türkmen L, Yalama E, Keddam M. Investigation of tribological behaviour and diffusion model of Fe2B layer formed by pack-boriding on SAE 1020 steel. Surf Coat Technol. 2019;377:124888.
  • Campos I, Farah M, López N, et al. Evaluation of the tool life and fracture toughness of cutting tools boronized by the paste boriding process. Appl Surf Sci. 2008;254:2967–2974.
  • Selçuk B, Ipek R, Karamis MB, et al. An investigation on surface properties of treated low carbon and alloyed steels (boriding and carburizing). J Mater Process Technol. 2000;103:310–317.
  • Martini C, Palombarini G, Poli G, et al. Sliding and abrasive wear behaviour of boride coatings. Wear. 2004;256:608–613.
  • Tabur M, Izciler M, Gul F, et al. Abrasive wear behavior of boronized AISI 8620 steel. Wear. 2009;266:1106–1112.
  • Han DW, Zhang JX. Preparation and display technologies of metallographic samples. Changsha: Press of Central South University; 2005.
  • Campos-Silva I, Ortiz-Domínguez M, Bravo-Bárcenas O, et al. Formation and kinetics of FeB/Fe2B layers and diffusion zone at the surface of AISI 316 borided steels. Surf Coat Technol. 2010;205:403–412.
  • Rile M. Reasons for the formation of cracks in boride coating on steel. Metalloved Termicheskaya Obrab Met. 1974;10:20–23.

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