4.3 Article

Experimental Research on New Developed Titanium Alloys for Biomedical Applications

期刊

BIOENGINEERING-BASEL
卷 9, 期 11, 页码 -

出版社

MDPI
DOI: 10.3390/bioengineering9110686

关键词

titanium alloys; Ti20Mo7Zr; Ti20Mo7Zr0; 5Si; microstructure; corrosion behavior; mechanical properties

资金

  1. Project Network of excellence in applied research and innovation for doctoral and postdoctoral programs/InoHubDoc
  2. European Social Fund [POCU/993/6/13/153437]
  3. Gheorghe Asachi Technical University from Iasi (TUIASI)

向作者/读者索取更多资源

This paper investigates the mechanical properties and electrochemical behavior of two new titanium alloys. The results show that the alloy with lower silicon content exhibits higher corrosion resistance and lower modulus of elasticity. A titanium oxide layer is observed on the surface of the alloys, and a double-layer passive film is formed with a two-time constant system.
The mechanical properties and electrochemical behavior of two new titanium alloys, Ti20Mo7Zr and Ti20Mo7Zr0.5Si, are investigated in this paper. The alloys have been manufactured by vacuum arc remelting (VAR) technique and studied to determine their microstructure, corrosion behavior, and mechanical properties. Metallographic observations and quantitative microanalysis by optical microscopy, scanning electron microscopy SEM, and energy dispersive X-rays spectroscopy EDX were performed. Data about the three-point bending test and microhardness are presented. For electrochemical properties, three different environments were used: Ringer solution at 25 degrees C, Ringer solution at 40 degrees C simulating fever condition, and 3.5% NaCl solution. Metallographic investigation revealed the biphasic and dendritic structure of both samples when the procedures were performed. Electrochemical testing in body simulation fluid, fever conditions, and saline medium showed that the lower the proportion of silicon in the samples, the higher the corrosion resistance. The formation of a titanium oxide layer on the surface of both samples was noticed using quantitative EDX analysis. The three-point bending test for the two samples revealed that the presence of silicon decreases the modulus of elasticity; the surface of the samples displayed soft and hard phases in the microhardness test. Electrochemical impedance spectroscopy (EIS) measurements were carried out at different potentials, and the obtained spectra exhibit a two-time constant system, attesting double-layer passive film on the samples.

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