Improving the properties of plasma heat-resistant coatings by means of spraying materials that reacting with exothermic effects

V. Gusev, O. Elagina, A. G. Buklakov
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Abstract

The quality of heat-resistant coatings deposited by flame spraying is largely determined by the adhesion of the coating to the surface of the part. One of the ways to increase adhesion is to deposition intermediate layers of thermosetting powders between the base material and the coating. In this work, two versions of heat-protective coatings are investigated — a two-layer coating consisting of an Al – Ni sublayer (20 – 80 wt. %) and a main ZrO2 layer, and a single-layer coating sprayed from an aluminum-clad zirconium oxide powder (20 ZrO2 – 80 Al, wt. % ). The method of differential thermal analysis was used to determine the temperature ranges and values of the exothermic effects of oxidation and redox reactions during heating of Al – Ni and ZrO2 clad powders. A significant exothermic effect was found during oxidation of the aluminum cladding shell in the temperature range of 360 °C and a stronger thermal effect due to the redox reaction at a temperature of 920 °C. The microstructure and microhardness of the obtained coatings have been studied, and their thermal conductivity and adhesion have been assessed. The resistance of the coatings during thermal cycling tests has been determined. It has been established that thermal protective coatings made of aluminum-clad zirconium oxide powder have the best characteristics under thermal cycling conditions. A higher level of adhesion and thermal cyclic resistance of such coatings are due to an increase in the enthalpy of aluminum-clad ZrO2 powders due to exothermic reactions and the presence of a metal binder.
利用与放热效应反应的喷涂材料改善等离子体耐热涂层的性能
通过火焰喷涂沉积的耐热涂层的质量在很大程度上取决于涂层与零件表面的附着力。增加附着力的方法之一是在基材和涂层之间沉积热固性粉末中间层。在这项工作中,研究了两种版本的热防护涂层-一种由Al - Ni子层(20 - 80wt . %)和ZrO2主层组成的双层涂层,以及一种由铝包覆氧化锆粉末(20zro2 - 80al, wt. %)喷涂的单层涂层。采用差热分析方法测定了Al - Ni和ZrO2包覆粉末在加热过程中氧化和氧化还原反应的放热效应的温度范围和数值。在360℃的温度范围内,铝包壳氧化产生了明显的放热效应,在920℃的温度范围内,氧化还原反应产生了更强的热效应。研究了涂层的显微组织和显微硬度,并对涂层的导热性和附着力进行了评价。在热循环试验中测定了涂层的耐磨性。结果表明,在热循环条件下,铝包氧化锆粉末热防护涂层的性能最好。由于放热反应和金属粘合剂的存在,铝包覆的ZrO2粉末的焓增加,这种涂层的附着力和热循环阻力更高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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