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March 21, 2026Materials1 citationsOpen Access

Comparative Wear Evaluation of Pure Zn, Zn–Mg and Zn–Mg–Y Alloys Using Mass Loss Measurements and Optical Profilometry

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TSTraian-Lucian SeverinVPViorel PaleuCBCostică Bejinariu

Key Points

  • This research aims to compare the wear behavior of pure Zn, Zn–3Mg, and Zn–3Mg–Y alloys under dry sliding conditions.
  • Conducted dry sliding wear tests using mass loss measurements and friction torque monitoring on an Amsler tribometer.
  • Analyzed wear tracks with optical profilometry to understand wear mechanisms.
  • Examined microstructure of alloys to identify intermetallic and phase components.
  • Zn–3Mg demonstrated significantly improved wear resistance compared to pure Zn.
  • Y addition did not consistently reduce wear volume under higher loads.
  • Wear mechanisms included abrasion, oxide layer formation, and localized adhesion, confirming complex tribological behavior.

Abstract

The present study investigates the dry sliding wear behaviour of pure Zn, Zn–3Mg, and Zn–3Mg–0.5Y biodegradable alloys using mass loss measurements, friction torque monitoring on an Amsler tribometer, and optical profilometry of wear tracks. The microstructure of the Zn–Mg–Y alloy exhibited an α-Zn matrix comprising Zn–Mg intermetallic constituents and dispersed Y-rich phases. Tribological testing at 20 N and 30 N revealed a marked enhancement in wear resistance for Zn–3Mg in comparison to pure Zn, attributable to matrix strengthening by intermetallic phases. Despite the stabilising effect of Y on the friction response, there was no consistent reduction in wear volume under higher loads. Surface investigations have revealed a multifaceted wear mechanism, characterised by a combination of abrasion, oxide tribolayer formation, and localised adhesion. The measured wear rates were found to fall within the range documented in the available literature concerning biodegradable Zn-based alloys, thereby confirming the experimental validity of the findings. In summary, Zn–3Mg exhibited the optimal equilibrium between friction stability and wear resistance under the examined dry sliding conditions. However, further research in physiological environments is necessary to evaluate its biomedical applicability.

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Cite This Study

Severin et al. (2026) studied this question.

synapsesocial.com/papers/69be38ee6e48c4981c679a56https://doi.org/10.3390/ma19061211
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