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Erschienen in: Journal of Materials Science 9/2016

29.01.2016 | Original Paper

Effects of carbide precipitation on the microstructural and tribological properties of Co–Cr–Mo–C medical implants after thermal treatment

verfasst von: F. Z. Hassani, M. Ketabchi, S. Bruschi, A. Ghiotti

Erschienen in: Journal of Materials Science | Ausgabe 9/2016

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Abstract

In this work, the influences of heat treatments on the microstructural features and, consequently, on the mechanical and wear characteristics of Co–Cr–Mo–C alloys commonly used as hip and knee implant materials, are investigated. Specimens of Co–Cr–Mo–C alloy in the as-cast condition were solution treated at 1230 °C for 3 h, and then either were quenched in water or furnace cooled. The achieved microstructures of the heat-treated samples, characterized by fine globular and lamellar-type carbides due to the different thermal-treatment conditions, was proved to affect the material microstructural, mechanical and wear behavior. The wear behavior was evaluated by means of pin-on-disk wear tests, which showed that the wear properties are strongly affected by the carbides shape, distribution, and size. It was proved that both large carbides precipitated in as-cast alloys, and also lamellar-type carbides induced by slow cooling after solubilization caused lower wear resistance than the globular fine carbides that were dispersed in the solution-treated and water-quenched specimens. Moreover, the ε-martensite, formed by the strain-induced martensitic transformation through plastic straining during the sliding of pin on disk, decreases the wear rate mainly due to the lower number of slip systems of the hexagonal structure.

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Literatur
1.
Zurück zum Zitat Henriques B, Bagheri A, Gasik M et al (2015) Mechanical properties of hot pressed CoCrMo alloy compacts for biomedical applications. Mater Des 83:829–834 Henriques B, Bagheri A, Gasik M et al (2015) Mechanical properties of hot pressed CoCrMo alloy compacts for biomedical applications. Mater Des 83:829–834
2.
Zurück zum Zitat Yamanaka K, Mori M, Kuramoto K, Chiba A (2014) Development of new Co–Cr–W-based biomedical alloys: effects of microalloying and thermomechanical processing on microstructures and mechanical properties. Mater Des 55:987–998CrossRef Yamanaka K, Mori M, Kuramoto K, Chiba A (2014) Development of new Co–Cr–W-based biomedical alloys: effects of microalloying and thermomechanical processing on microstructures and mechanical properties. Mater Des 55:987–998CrossRef
4.
Zurück zum Zitat Mahdavi S, Allahkaram S (2015) Composition, characteristics and tribological behavior of Cr, Co–Cr and Co–Cr/TiO2 nano-composite coatings electrodeposited from trivalent chromium based baths. J Alloy Compd 635:150–157CrossRef Mahdavi S, Allahkaram S (2015) Composition, characteristics and tribological behavior of Cr, Co–Cr and Co–Cr/TiO2 nano-composite coatings electrodeposited from trivalent chromium based baths. J Alloy Compd 635:150–157CrossRef
5.
Zurück zum Zitat Zangeneh S, Ketabchi M (2013) Grain refinement by pearlitic-type constituents in Co–28Cr–5Mo–0.3C alloy. Mater Lett 94:206–209CrossRef Zangeneh S, Ketabchi M (2013) Grain refinement by pearlitic-type constituents in Co–28Cr–5Mo–0.3C alloy. Mater Lett 94:206–209CrossRef
6.
Zurück zum Zitat Mori M, Yamanaka K, Chiba A (2014) Effect of cold rolling on phase decomposition in biomedical Co–29Cr–6Mo–0.2 N alloy during isothermal heat treatment at 1073K. J Alloy Compd 612:273–279CrossRef Mori M, Yamanaka K, Chiba A (2014) Effect of cold rolling on phase decomposition in biomedical Co–29Cr–6Mo–0.2 N alloy during isothermal heat treatment at 1073K. J Alloy Compd 612:273–279CrossRef
8.
Zurück zum Zitat Mineta S, Namba S, Yoneda T, Ueda K, Narushima T (2010) Carbide formation and dissolution in biomedical Co–Cr–Mo alloys with different carbon contents during solution treatment. Metall Mater Trans A 41:2129–2138CrossRef Mineta S, Namba S, Yoneda T, Ueda K, Narushima T (2010) Carbide formation and dissolution in biomedical Co–Cr–Mo alloys with different carbon contents during solution treatment. Metall Mater Trans A 41:2129–2138CrossRef
9.
Zurück zum Zitat Lee S-H, Takahashi E, Nomura N, Chiba A (2005) Effect of heat treatment on microstructure and mechanical properties of Ni-and C-free Co–Cr–Mo alloys for medical applications. Mater Trans 46:1790–1793CrossRef Lee S-H, Takahashi E, Nomura N, Chiba A (2005) Effect of heat treatment on microstructure and mechanical properties of Ni-and C-free Co–Cr–Mo alloys for medical applications. Mater Trans 46:1790–1793CrossRef
10.
Zurück zum Zitat Montero-Ocampo C, Lopez H, Talavera M (1999) Effect of alloy preheating on the mechanical properties of as-cast Co–Cr–Mo–C alloys. Metall Mater Trans A 30:611–620CrossRef Montero-Ocampo C, Lopez H, Talavera M (1999) Effect of alloy preheating on the mechanical properties of as-cast Co–Cr–Mo–C alloys. Metall Mater Trans A 30:611–620CrossRef
11.
Zurück zum Zitat Li GJ, Li J, Luo X (2014) Effects of high temperature treatment on microstructure and mechanical properties of laser-clad NiCrBSi/WC coatings on titanium alloy substrate. Mater Charact 98:83–92CrossRef Li GJ, Li J, Luo X (2014) Effects of high temperature treatment on microstructure and mechanical properties of laser-clad NiCrBSi/WC coatings on titanium alloy substrate. Mater Charact 98:83–92CrossRef
12.
Zurück zum Zitat Caudillo M, Herrera-Trejo M, Castro M, Ramirez E, Gonzalez C, Juarez J (2002) On carbide dissolution in an as-cast ASTM F-75 alloy. J Biomed Mater Res 59:378–385CrossRef Caudillo M, Herrera-Trejo M, Castro M, Ramirez E, Gonzalez C, Juarez J (2002) On carbide dissolution in an as-cast ASTM F-75 alloy. J Biomed Mater Res 59:378–385CrossRef
13.
Zurück zum Zitat Zangeneh S, Lashgari H, Roshani A (2012) Microstructure and tribological characteristics of aged Co–28Cr–5Mo–0.3 C alloy. Mater Des 37:292–303CrossRef Zangeneh S, Lashgari H, Roshani A (2012) Microstructure and tribological characteristics of aged Co–28Cr–5Mo–0.3 C alloy. Mater Des 37:292–303CrossRef
14.
Zurück zum Zitat Ramírez-Vidaurri L, Castro-Román M, Herrera-Trejo M, García-López C, Almanza-Casas E (2009) Cooling rate and carbon content effect on the fraction of secondary phases precipitate in as-cast microstructure of ASTM F75 alloy. J Mater Process Technol 209:1681–1687CrossRef Ramírez-Vidaurri L, Castro-Román M, Herrera-Trejo M, García-López C, Almanza-Casas E (2009) Cooling rate and carbon content effect on the fraction of secondary phases precipitate in as-cast microstructure of ASTM F75 alloy. J Mater Process Technol 209:1681–1687CrossRef
15.
Zurück zum Zitat Lashgari H, Zangeneh S, Ketabchi M (2011) Isothermal aging effect on the microstructure and dry sliding wear behavior of Co–28Cr–5Mo–0.3C alloy. J Mater Sci 46:7262–7274. doi:10.1007/s10853-011-5686-2 CrossRef Lashgari H, Zangeneh S, Ketabchi M (2011) Isothermal aging effect on the microstructure and dry sliding wear behavior of Co–28Cr–5Mo–0.3C alloy. J Mater Sci 46:7262–7274. doi:10.​1007/​s10853-011-5686-2 CrossRef
16.
Zurück zum Zitat Huang P, Lopez H (1999) Athermal ε-martensite in a Co–Cr–Mo alloy: grain size effects. Mater Lett 39:249–253CrossRef Huang P, Lopez H (1999) Athermal ε-martensite in a Co–Cr–Mo alloy: grain size effects. Mater Lett 39:249–253CrossRef
17.
Zurück zum Zitat Balagna C, Spriano S, Faga M (2012) Characterization of Co–Cr–Mo alloys after a thermal treatment for high wear resistance. Mater Sci Eng, C 32:1868–1877CrossRef Balagna C, Spriano S, Faga M (2012) Characterization of Co–Cr–Mo alloys after a thermal treatment for high wear resistance. Mater Sci Eng, C 32:1868–1877CrossRef
18.
Zurück zum Zitat Doni Z, Alves A, Toptan F et al (2013) Dry sliding and tribocorrosion behaviour of hot pressed CoCrMo biomedical alloy as compared with the cast CoCrMo and Ti6Al4 V alloys. Mater Des 52:47–57CrossRef Doni Z, Alves A, Toptan F et al (2013) Dry sliding and tribocorrosion behaviour of hot pressed CoCrMo biomedical alloy as compared with the cast CoCrMo and Ti6Al4 V alloys. Mater Des 52:47–57CrossRef
19.
Zurück zum Zitat Saldívar-García A, López H (2005) Microstructural effects on the wear resistance of wrought and as-cast Co–Cr–Mo–C implant alloys. J Biomed Mater Res, Part A 74:269–274CrossRef Saldívar-García A, López H (2005) Microstructural effects on the wear resistance of wrought and as-cast Co–Cr–Mo–C implant alloys. J Biomed Mater Res, Part A 74:269–274CrossRef
20.
Zurück zum Zitat Chiba A, Kumagai K, Nomura N, Miyakawa S (2007) Pin-on-disk wear behavior in a like-on-like configuration in a biological environment of high carbon cast and low carbon forged Co–29Cr–6Mo alloys. Acta Mater 55:1309–1318CrossRef Chiba A, Kumagai K, Nomura N, Miyakawa S (2007) Pin-on-disk wear behavior in a like-on-like configuration in a biological environment of high carbon cast and low carbon forged Co–29Cr–6Mo alloys. Acta Mater 55:1309–1318CrossRef
21.
Zurück zum Zitat Mori M, Yamanaka K, Matsumoto H, Chiba A (2010) Evolution of cold-rolled microstructures of biomedical Co–Cr–Mo alloys with and without N doping. Mater Sci Eng, A 528:614–621CrossRef Mori M, Yamanaka K, Matsumoto H, Chiba A (2010) Evolution of cold-rolled microstructures of biomedical Co–Cr–Mo alloys with and without N doping. Mater Sci Eng, A 528:614–621CrossRef
22.
Zurück zum Zitat Li Y, Yamashita Y, Tang N et al (2012) Influence of carbon and nitrogen addition on microstructure and hot deformation behavior of biomedical Co–Cr–Mo alloy. Mater Chem Phys 135:849–854CrossRef Li Y, Yamashita Y, Tang N et al (2012) Influence of carbon and nitrogen addition on microstructure and hot deformation behavior of biomedical Co–Cr–Mo alloy. Mater Chem Phys 135:849–854CrossRef
23.
Zurück zum Zitat Koizumi Y, Suzuki S, Yamanaka K et al (2013) Strain-induced martensitic transformation near twin boundaries in a biomedical Co–Cr–Mo alloy with negative stacking fault energy. Acta Mater 61:1648–1661CrossRef Koizumi Y, Suzuki S, Yamanaka K et al (2013) Strain-induced martensitic transformation near twin boundaries in a biomedical Co–Cr–Mo alloy with negative stacking fault energy. Acta Mater 61:1648–1661CrossRef
24.
Zurück zum Zitat Mani A, Lopez H (2011) Deformation induced FCC to HCP transformation in a Co–27Cr–5Mo–0.05 C alloy. Mater Sci Eng, A 528:3037–3043CrossRef Mani A, Lopez H (2011) Deformation induced FCC to HCP transformation in a Co–27Cr–5Mo–0.05 C alloy. Mater Sci Eng, A 528:3037–3043CrossRef
25.
Zurück zum Zitat SaldÍvar A, Lopez H (2001) Role of aging on the martensitic transformation in a cast cobalt alloy. Scripta Mater 45:427–433CrossRef SaldÍvar A, Lopez H (2001) Role of aging on the martensitic transformation in a cast cobalt alloy. Scripta Mater 45:427–433CrossRef
26.
Zurück zum Zitat Medrano AdJSv, Medrano AM, Rodrıguez AS (1999) Effect of solution treatments on the FCC/HCP isothermal martensitic transformation in Co–27Cr–5Mo–0.05 C aged at 800°C. Scripta Mater 40:717–722CrossRef Medrano AdJSv, Medrano AM, Rodrıguez AS (1999) Effect of solution treatments on the FCC/HCP isothermal martensitic transformation in Co–27Cr–5Mo–0.05 C aged at 800°C. Scripta Mater 40:717–722CrossRef
27.
Zurück zum Zitat Yamanaka K, Mori M, Chiba A (2012) Enhanced mechanical properties of as-forged Co–Cr–Mo–N alloys with ultrafine-grained structures. Metall Mater Trans A 43:5243–5257CrossRef Yamanaka K, Mori M, Chiba A (2012) Enhanced mechanical properties of as-forged Co–Cr–Mo–N alloys with ultrafine-grained structures. Metall Mater Trans A 43:5243–5257CrossRef
28.
Zurück zum Zitat Huang P, Salinas-Rodriguez A, Lopez H (1999) Tribological behaviour of cast and wrought Co–Cr–Mo implant alloys. Mater Sci Technol 15:1324–1330CrossRef Huang P, Salinas-Rodriguez A, Lopez H (1999) Tribological behaviour of cast and wrought Co–Cr–Mo implant alloys. Mater Sci Technol 15:1324–1330CrossRef
29.
Zurück zum Zitat Varano R, Bobyn J, Medley J, Yue S (2006) The effect of microstructure on the wear of cobalt-based alloys used in metal-on-metal hip implants. Proc Inst Mech Eng [H] 220:145–159CrossRef Varano R, Bobyn J, Medley J, Yue S (2006) The effect of microstructure on the wear of cobalt-based alloys used in metal-on-metal hip implants. Proc Inst Mech Eng [H] 220:145–159CrossRef
30.
Zurück zum Zitat Kinbrum A, Unsworth A (2008) The wear of high-carbon metal-on-metal bearings after different heat treatments. Proc Inst Mech Eng [H] 222:887–895CrossRef Kinbrum A, Unsworth A (2008) The wear of high-carbon metal-on-metal bearings after different heat treatments. Proc Inst Mech Eng [H] 222:887–895CrossRef
31.
Zurück zum Zitat Sage M (1949) Sur une méthode d’analyse quantitative des variétés allotropiques du cobalt par les rayons X. Comptes rendus hebdomadaires des séances de l’Académie des sciences 228:572 Sage M (1949) Sur une méthode d’analyse quantitative des variétés allotropiques du cobalt par les rayons X. Comptes rendus hebdomadaires des séances de l’Académie des sciences 228:572
32.
Zurück zum Zitat Mineta S, Namba S, Yoneda T, Ueda K, Narushima T (2011) Precipitates in as-cast and heat-treated ASTM F75 Co–Cr–Mo–C alloys containing Si and/or Mn. Metall Mater Trans A 42:1941–1949CrossRef Mineta S, Namba S, Yoneda T, Ueda K, Narushima T (2011) Precipitates in as-cast and heat-treated ASTM F75 Co–Cr–Mo–C alloys containing Si and/or Mn. Metall Mater Trans A 42:1941–1949CrossRef
33.
Zurück zum Zitat Lee S-H, Takahashi E, Nomura N, Chiba A (2006) Effect of carbon addition on microstructure and mechanical properties of a wrought Co–Cr–Mo implant alloy. Mater Trans 47:287–290CrossRef Lee S-H, Takahashi E, Nomura N, Chiba A (2006) Effect of carbon addition on microstructure and mechanical properties of a wrought Co–Cr–Mo implant alloy. Mater Trans 47:287–290CrossRef
34.
Zurück zum Zitat Yamanaka K, Mori M, Chiba A (2014) Effects of carbon concentration on microstructure and mechanical properties of as-cast nickel-free Co–28Cr–9 W-based dental alloys. Mater Sci Eng, C 40:127–134CrossRef Yamanaka K, Mori M, Chiba A (2014) Effects of carbon concentration on microstructure and mechanical properties of as-cast nickel-free Co–28Cr–9 W-based dental alloys. Mater Sci Eng, C 40:127–134CrossRef
35.
Zurück zum Zitat Lashgari H, Zangeneh S, Hasanabadi F, Saghafi M (2010) Microstructural evolution during isothermal aging and strain-induced transformation followed by isothermal aging in Co–Cr–Mo–C alloy: a comparative study. Mater Sci Eng, A 527:4082–4091CrossRef Lashgari H, Zangeneh S, Hasanabadi F, Saghafi M (2010) Microstructural evolution during isothermal aging and strain-induced transformation followed by isothermal aging in Co–Cr–Mo–C alloy: a comparative study. Mater Sci Eng, A 527:4082–4091CrossRef
36.
Zurück zum Zitat Matković T, Matković P, Malina J (2004) Effects of Ni and Mo on the microstructure and some other properties of Co–Cr dental alloys. J Alloy Compd 366:293–297CrossRef Matković T, Matković P, Malina J (2004) Effects of Ni and Mo on the microstructure and some other properties of Co–Cr dental alloys. J Alloy Compd 366:293–297CrossRef
37.
Zurück zum Zitat Weeton J, Signorelli R (1955) Effect of heat treatment upon microstructures, microconstituents, and hardness of a wrought cobalt base alloy. Trans ASM 47:815–852 Weeton J, Signorelli R (1955) Effect of heat treatment upon microstructures, microconstituents, and hardness of a wrought cobalt base alloy. Trans ASM 47:815–852
38.
Zurück zum Zitat Sims CT (1969) General Electric Co., Schenectady Sims CT (1969) General Electric Co., Schenectady
39.
Zurück zum Zitat Kilner T, Pilliar R, Weatherly G, Allibert C (1982) Phase identification and incipient melting in a cast Co–Cr surgical implant alloy. J Biomed Mater Res 16:63–79CrossRef Kilner T, Pilliar R, Weatherly G, Allibert C (1982) Phase identification and incipient melting in a cast Co–Cr surgical implant alloy. J Biomed Mater Res 16:63–79CrossRef
40.
Zurück zum Zitat Giacchi J, Morando C, Fornaro O, Palacio H (2011) Microstructural characterization of as-cast biocompatible Co–Cr–Mo alloys. Mater Charact 62:53–61CrossRef Giacchi J, Morando C, Fornaro O, Palacio H (2011) Microstructural characterization of as-cast biocompatible Co–Cr–Mo alloys. Mater Charact 62:53–61CrossRef
41.
Zurück zum Zitat Clemow A, Daniell B (1979) Solution treatment behavior of Co–Cr–Mo alloy. J Biomed Mater Res 13:265–279CrossRef Clemow A, Daniell B (1979) Solution treatment behavior of Co–Cr–Mo alloy. J Biomed Mater Res 13:265–279CrossRef
42.
Zurück zum Zitat Muterlle P, Zendron M, Perina M, Bardini R, Molinari A (2010) Microstructure and tensile properties of metal injection molding Co–29Cr–6Mo–0.23C alloy. J Mater Sci 45:1091–1099. doi:10.1007/s10853-009-4051-1 CrossRef Muterlle P, Zendron M, Perina M, Bardini R, Molinari A (2010) Microstructure and tensile properties of metal injection molding Co–29Cr–6Mo–0.23C alloy. J Mater Sci 45:1091–1099. doi:10.​1007/​s10853-009-4051-1 CrossRef
43.
Zurück zum Zitat Yamanaka K, Mori M, Chiba A (2012) Origin of significant grain refinement in Co–Cr–Mo alloys without severe plastic deformation. Metall Mater Trans A 43:4875–4887CrossRef Yamanaka K, Mori M, Chiba A (2012) Origin of significant grain refinement in Co–Cr–Mo alloys without severe plastic deformation. Metall Mater Trans A 43:4875–4887CrossRef
44.
Zurück zum Zitat García AdJS, Medrano AM, Rodríguez AS (1999) Formation of hcp martensite during the isothermal aging of an fcc Co–27Cr–5Mo–0.05 C orthopedic implant alloy. Metall Mater Trans A 30:1177–1184CrossRef García AdJS, Medrano AM, Rodríguez AS (1999) Formation of hcp martensite during the isothermal aging of an fcc Co–27Cr–5Mo–0.05 C orthopedic implant alloy. Metall Mater Trans A 30:1177–1184CrossRef
45.
Zurück zum Zitat Kurosu S, Matsumoto H, Chiba A (2010) Isothermal phase transformation in biomedical Co–29Cr–6Mo alloy without addition of carbon or nitrogen. Metall Mater Trans A 41:2613–2625CrossRef Kurosu S, Matsumoto H, Chiba A (2010) Isothermal phase transformation in biomedical Co–29Cr–6Mo alloy without addition of carbon or nitrogen. Metall Mater Trans A 41:2613–2625CrossRef
46.
Zurück zum Zitat Bedolla-Gil Y, Juarez-Hernandez A, Perez-Unzueta A, Garcia-Sanchez E, Mercado-Solis R, Hernandez-Rodriguez M (2009) Influence of heat treatments on mechanical properties of a biocompatibility alloy ASTM F75. Rev Mex Fıs S 55:1–5 Bedolla-Gil Y, Juarez-Hernandez A, Perez-Unzueta A, Garcia-Sanchez E, Mercado-Solis R, Hernandez-Rodriguez M (2009) Influence of heat treatments on mechanical properties of a biocompatibility alloy ASTM F75. Rev Mex Fıs S 55:1–5
47.
Zurück zum Zitat Chen Y, Li Y, Kurosu S et al (2014) Effects of sigma phase and carbide on the wear behavior of CoCrMo alloys in Hanks’ solution. Wear 310:51–62CrossRef Chen Y, Li Y, Kurosu S et al (2014) Effects of sigma phase and carbide on the wear behavior of CoCrMo alloys in Hanks’ solution. Wear 310:51–62CrossRef
48.
Zurück zum Zitat Pourzal R, Catelas I, Theissmann R, Kaddick C, Fischer A (2011) Characterization of wear particles generated from CoCrMo alloy under sliding wear conditions. Wear 271:1658–1666CrossRef Pourzal R, Catelas I, Theissmann R, Kaddick C, Fischer A (2011) Characterization of wear particles generated from CoCrMo alloy under sliding wear conditions. Wear 271:1658–1666CrossRef
49.
Zurück zum Zitat Xu Y, Miao Q, Liang W et al (2015) Tribological behavior of Al2O3/Al composite coating on γ-TiAl at elevated temperature. Mater Charact 101:122–129CrossRef Xu Y, Miao Q, Liang W et al (2015) Tribological behavior of Al2O3/Al composite coating on γ-TiAl at elevated temperature. Mater Charact 101:122–129CrossRef
50.
Zurück zum Zitat Atamert S, Stekly J (1993) Microstructure, wear resistance, and stability of cobalt based and alternative iron based hardfacing alloys. Surf Eng 9:231–240CrossRef Atamert S, Stekly J (1993) Microstructure, wear resistance, and stability of cobalt based and alternative iron based hardfacing alloys. Surf Eng 9:231–240CrossRef
51.
Zurück zum Zitat Clemow A, Daniell B (1980) The influence of microstructure on the adhesive wear resistance of a Co–C–Mo alloy. Wear 61:219–231CrossRef Clemow A, Daniell B (1980) The influence of microstructure on the adhesive wear resistance of a Co–C–Mo alloy. Wear 61:219–231CrossRef
52.
Zurück zum Zitat Kumagai K, Nomura N, Ono T, Hotta M, Chiba A (2005) Dry friction and wear behavior of forged Co–29Cr–6Mo alloy without Ni and C additions for implant applications. Mater Trans 46:1578–1587CrossRef Kumagai K, Nomura N, Ono T, Hotta M, Chiba A (2005) Dry friction and wear behavior of forged Co–29Cr–6Mo alloy without Ni and C additions for implant applications. Mater Trans 46:1578–1587CrossRef
53.
Zurück zum Zitat Varano R, Bobyn J, Medley J, Yue S (2006) Effect of microstructure on the dry sliding friction behavior of CoCrMo alloys used in metal-on-metal hip implants. J Biomed Mater Res B Appl Biomater 76:281–286CrossRef Varano R, Bobyn J, Medley J, Yue S (2006) Effect of microstructure on the dry sliding friction behavior of CoCrMo alloys used in metal-on-metal hip implants. J Biomed Mater Res B Appl Biomater 76:281–286CrossRef
Metadaten
Titel
Effects of carbide precipitation on the microstructural and tribological properties of Co–Cr–Mo–C medical implants after thermal treatment
verfasst von
F. Z. Hassani
M. Ketabchi
S. Bruschi
A. Ghiotti
Publikationsdatum
29.01.2016
Verlag
Springer US
Erschienen in
Journal of Materials Science / Ausgabe 9/2016
Print ISSN: 0022-2461
Elektronische ISSN: 1573-4803
DOI
https://doi.org/10.1007/s10853-016-9762-5

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