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Metal–ceramic composite layers on stainless steel through the combination of electrophoretic deposition and galvanic processes

机译:通过电泳沉积和电镀工艺相结合的不锈钢上的金属陶瓷复合层

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摘要

The use of metal–ceramic composite layers is of considerable technical interest for many areas of application. The use of electrochemical processes makes it possible to realize coatings on stainless steel which combine the properties of the metals with those of ceramics in an outstanding manner. The process presented here is based on a combination of electrophoretic and electrolytic deposition. At the same time, a very high ceramic ratio is attained in comparison to electrolytic dispersion depositions. It was therefore possible to achieve both nickel–zirconium oxide as well as a copper–zirconium oxide coatings with strong adhesive bonds on stainless steel. A preliminary nickel plating or preliminary copper plating of the stainless steel substrate was first realized. A nanoscale zirconium oxide powder (Tosoh TZ-8Y) from an ethanolic suspension was then applied electrophoretically onto this layer and sintered to an open-porous layer with a porosity of 40–50%. After this, the metal was galvanically infiltrated into the pores. An annealing process was then carried out to improve the layer bonding. Solid-state physical tests reveal that a good material bonding of the composite layer onto the substrate occurred as a result of diffusion processes. Metal–ceramic composite layers can be produced through a combination of electrophoretic and electroplating technology with strongly bond on the substrate by a final heat treatment.
机译:在许多应用领域中,金属陶瓷复合层的使用具有相当大的技术意义。电化学方法的使用使得可以在不锈钢上实现涂层,该涂层以突出的方式结合了金属和陶瓷的特性。此处介绍的过程基于电泳和电解沉积的结合。同时,与电解分散体沉积相比,获得了非常高的陶瓷比率。因此,可以在不锈钢上同时获得具有牢固粘合力的镍锆氧化物涂层和铜锆氧化物涂层。首先实现不锈钢基板的预镀镍或预镀铜。然后将乙醇悬浮液中的纳米级氧化锆粉末(Tosoh TZ-8Y)电泳涂到该层上,并烧结成孔隙率为40%至50%的开孔层。此后,金属被电渗入孔中。然后进行退火工艺以改善层结合。固态物理测试表明,由于扩散过程,复合层与基材之间形成了良好的材料结合。金属陶瓷复合层可以通过电泳和电镀技术的结合来生产,并通过最终热处理在基材上牢固地结合在一起。

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  • 来源
    《Journal of Materials Science》 |2007年第12期|4545-4551|共7页
  • 作者单位

    Department of Materials Engineering Technical University Ilmenau 98693 Ilmenau Germany;

    Department of Materials Engineering Technical University Ilmenau 98693 Ilmenau Germany;

    Center for Micro and Nanotechnologies Technical University Ilmenau 98693 Ilmenau Germany;

    Center for Micro and Nanotechnologies Technical University Ilmenau 98693 Ilmenau Germany;

    Department of Materials Engineering Technical University Ilmenau 98693 Ilmenau Germany;

    Center for Micro and Nanotechnologies Technical University Ilmenau 98693 Ilmenau Germany;

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