Electrochemical Anodizing Treatment to Enhance Localized Corrosion Resistance of Pure Titanium

D. Prando, A. Brenna, F. Bolzoni, M. Diamanti, M. Pedeferri, M. Ormellese
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引用次数: 9

Abstract

Background Titanium has outstanding corrosion resistance due to the thin protective oxide layer that is formed on its surface. Nevertheless, in harsh and severe environments, pure titanium may suffer localized corrosion. In those conditions, costly titanium alloys containing palladium, nickel and molybdenum are used. This purpose investigated how it is possible to control corrosion, at lower cost, by electrochemical surface treatment on pure titanium, increasing the thickness of the natural oxide layer. Methods Anodic oxidation was performed on titanium by immersion in H2SO4 solution and applying voltages ranging from 10 to 80 V. Different anodic current densities were considered. Potentiodynamic tests in chloride- and fluoride-containing solutions were carried out on anodized titanium to determine the pitting potential. Results All tested anodizing treatments increased corrosion resistance of pure titanium, but never reached the performance of titanium alloys. The best corrosion behavior was obtained on titanium anodized at voltages lower than 40 V at 20 mA/cm2. Conclusions Titanium samples anodized at low cell voltage were seen to give high corrosion resistance in chloride- and fluoride-containing solutions. Electrolyte bath and anodic current density have little effect on the corrosion behavior.
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电化学阳极氧化处理提高纯钛局部耐蚀性
钛表面有一层薄薄的氧化保护层,具有很好的抗腐蚀性能。然而,在恶劣和恶劣的环境中,纯钛可能会受到局部腐蚀。在这些条件下,昂贵的钛合金含有钯,镍和钼被使用。本研究的目的是研究如何通过对纯钛进行电化学表面处理,增加天然氧化层的厚度,以较低的成本控制腐蚀。方法采用H2SO4溶液浸泡,施加10 ~ 80 V电压对钛进行阳极氧化。考虑了不同的阳极电流密度。在含氯和含氟溶液中对阳极氧化钛进行了电位试验,以确定其点蚀电位。结果所有阳极氧化处理均能提高纯钛的耐蚀性,但均达不到钛合金的性能。在电压低于40 V、电流为20 mA/cm2的阳极氧化条件下,钛的腐蚀性能最好。结论在低电池电压下阳极处理的钛样品在含氯和含氟溶液中具有较高的耐腐蚀性。电解液和阳极电流密度对腐蚀行为影响不大。
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Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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12 months
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