首页> 外文期刊>Vacuum: Technology Applications & Ion Physics: The International Journal & Abstracting Service for Vacuum Science & Technology >Study plasma electrolytic oxidation process and characterization of coatings formed in an alumina nanoparticle suspension
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Study plasma electrolytic oxidation process and characterization of coatings formed in an alumina nanoparticle suspension

机译:研究等离子体电解氧化工艺及其在氧化铝纳米颗粒悬浮液中形成的涂层的表征

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摘要

Alumina-silicate composite coatings were formed on titanium substrate by plasma electrolytic oxidation (PEO) process using a silicate-based electrolyte containing alumina nanoparticles. Microstructure, chemical and phase compositions, and thickness of the coatings were investigated to determine, coating mechanism and probable reactions during the process. The effect of processing time on corrosion resistance of the coatings was investigated using the potentiodynamic polarization test. Barrier layer (TiO_2) formation, micro arcs occurrence, and electrolyte ionization were the main stages of PEO coating growth process. Alumina nanoparticles were incorporated into the coating by cataphoretic and spark ignition mechanisms. During the PEO process, anionic components and nanoparticles were drawn into discharge channels and nanoparticles were sintered through the spark ignition which caused to fill the pores. PEO process resulted in improved corrosion resistance of titanium from 2.33 x 10~4 ? to 1.67 x 10~5 ?. Cavities that formed by discharge channels and amount of alumina particles that deposited to the surface were two main opponent factors that controlling the coating porosity. It was found that an optimum of 20 min processing time leads to minimum amount of porosity (15.2%) and maximum corrosion resistance.
机译:使用包含氧化铝纳米粒子的基于硅酸盐的电解质,通过等离子电解氧化(PEO)工艺在钛基板上形成氧化铝-硅酸盐复合涂层。研究了涂层的微观结构,化学和相组成以及涂层的厚度,以确定在该过程中的涂层机理和可能的反应。使用电位动力学极化试验研究了加工时间对涂层耐腐蚀性的影响。阻挡层(TiO_2)的形成,微弧的产生和电解质的电离是PEO涂层生长过程的主要阶段。氧化铝纳米粒子通过电泳和火花点火机制被引入涂层中。在PEO过程中,阴离子成分和纳米颗粒被吸入放电通道,并且通过火花点火烧结纳米颗粒,从而填充了孔。 PEO工艺使钛的抗腐蚀性提高了2.33 x 10〜4?至1.67 x 10〜5?由放电通道形成的腔和沉积在表面的氧化铝颗粒的数量是控制涂层孔隙率的两个主要对立因素。发现最佳的20分钟处理时间可导致最小的孔隙率(15.2%)和最大的耐腐蚀性。

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