Preparation of coatings with high infrared emissivity

Vyacheslav Sirota, Sergei Zaitsev, Mihail Limarenko, D. Prokhorenkov, M.S. Lebedev, A. Churikov, Alexey Dan'shin
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Abstract

Introduction. One of the promising modern methods of coating formation is detonation gas dynamic sputtering. Coatings obtained by this method have high adhesion to the substrate, dense structure and specified functional properties. Development of technology for obtaining functional coatings with high emission coefficient in the infrared range is an urgent need for the development of high-temperature industrial processes and technologies. High-temperature industrial processes consume a large amount of energy, so improving the energy efficiency of industrial equipment is considered as one of the ways to overcome the ever-growing energy crisis. To this end, coatings with high infrared emissivity have been developed for industrial furnaces. These coatings are usually applied to the furnace walls, which significantly improves energy efficiency by increasing heat transfer from the heat-emitting surfaces of the furnace. The purpose of the work is to obtain coatings with high emission indices in the infrared range for further recommendation of its use in baking ovens of Shebekinsky machine-building plant. Methods for studying coating specimens obtained by detonation gas-thermal method: scanning electron microscopy, X-ray phase analysis, energy dispersive analysis, infrared spectroscopy. Results and discussion. The microstructure, phase composition, emissivity and thermal cycling resistance of Fe2O3; Al2O3 + 10 % Fe2O3; Ti + 10% Fe2O3 coatings obtained by detonation gas-dynamic powder spraying are investigated in this work. The results of the study showed that the obtained coatings have a dense structure, increased emissivity and resistance to thermal treatment cycles, as a result of which the structure of the crystal lattice of the coatings does not change.
制备高红外发射率涂层
简介引爆气体动态溅射是最有前途的现代涂层形成方法之一。用这种方法获得的涂层与基体的附着力强,结构致密,并具有特定的功能特性。开发获得在红外线范围内具有高发射系数的功能涂层的技术是高温工业流程和技术发展的迫切需要。高温工业过程需要消耗大量能源,因此提高工业设备的能效被认为是克服日益严重的能源危机的方法之一。为此,人们开发了用于工业炉的高红外发射率涂层。这些涂层通常涂在炉壁上,通过增加炉子发热表面的热传导,大大提高了能效。这项工作的目的是获得在红外线范围内具有高发射指数的涂层,以便进一步推荐其用于谢别金斯基机械制造厂的烘烤炉。研究通过引爆气热法获得的涂层试样的方法有:扫描电子显微镜、X 射线相分析、能量色散分析、红外光谱。结果和讨论。本研究探讨了通过引爆气体-动态粉末喷涂法获得的 Fe2O3;Al2O3 + 10 % Fe2O3;Ti + 10 % Fe2O3 涂层的微观结构、相组成、发射率和热循环电阻。研究结果表明,所获得的涂层具有致密的结构、更高的发射率和耐热处理循环性,因此涂层的晶格结构不会发生变化。
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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