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April 15, 2026Advanced Engineering Materials0 citations

Engineering Mechanical and Bio‐Tribological Performance of Laser Powder Bed Fusion CoCrMo via Postprocessing Heat Treatment

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SRSangharatna M. RamtekeVBVijayabhaskara Rao BhaviripudiJGJorge Ramos Grez

Key Points

  • This research aims to investigate how heat treatment affects the mechanical and bio-tribological properties of CoCrMo implants fabricated via laser powder bed fusion.
  • Conducted heat treatments at 550°C, 675°C, 800°C, and 1100°C.
  • Performed microstructural analyses to assess stress relief and structural changes.
  • Evaluated bio-tribological performance under dry and lubricated conditions.
  • Achieved up to 50% reduction in wear for both main body plates and counter-body balls at 1100°C.
  • Observed significant microstructural changes, including recrystallization and carbide formation.
  • Identified a multifunctional tribo-layer comprising various lubricious elements contributing to performance improvements.

Abstract

Laser powder bed fusion (LPBF) enables the fabrication of complex CoCrMo alloy implants but introduces detrimental residual stresses that compromise their structural integrity and tribological performance. While heat treatment (HT) is a common stress‐relief strategy, its specific impact on the bio‐tribological behavior under physiologically relevant conditions remains unclear. Hence, this study elucidates the effect of HT (550°C, 675°C, 800°C, and 1100°C) on the microstructural evolution, stress relief, and bio‐tribological properties of LPBF‐fabricated CoCrMo. The microstructural analysis confirmed progressive stress relaxation, with recrystallization and extensive M 23 C 6 carbide/Cr 2 O 3 oxide formation dominating at 1100°C. The 1100°C HT reduced the main body (plates) wear by 25% and 50% under dry conditions and synovial fluid lubrication, respectively. The counter‐body (balls) wear was reduced by 40 and 60%, respectively, demonstrating a synergistic protective effect crucial for the longevity of biomedical implant systems. Raman spectroscopy revealed that the superior performance at 1100°C is governed by the formation of a multifunctional tribo‐layer, comprising lubricious Co 3 O 4 , graphitic carbon (dry) and a stable oxide‐phosphate film (lubricated). Our findings demonstrate that HT at 1100°C provides an optimal combination of complete stress relief, extreme hardness, and protective surface chemistry, establishing it as an excellent approach to enhance the longevity and reliability of biomedical implants.

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Cite This Study

Ramteke et al. (2026) studied this question.

synapsesocial.com/papers/69df2bcae4eeef8a2a6b0ac0https://doi.org/10.1002/adem.70770
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