THERMODYNAMIC MODELING OF OBTAINING WEAR-RESISTANT COATINGS USING COMPOSITE POWDER CHARGES

Борис СЕРЕДА, Ірина КРУГЛЯК, Дмитро СЕРЕДА, Ірина ПАЛЕХОВА
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Abstract

Abstract. The article provides an overview and analysis of obtaining wear-resistant coatings for parts working in aggressive environments of metallurgical production. The solution of these problems is associated with the hardening of the surface layers of products. Their role in the durability of machines and mechanisms has especially increased at the present time, since the development of most industries is associated with an increase in loads, temperatures, and the aggressiveness of the environments in which the part operates. The titanizing process is an effective method of increasing the reliability and durability of machine parts, tools and technological equipment due to the creation of titanized layers on the surface of the machined parts, which have a unique set of physical and chemical properties. The results of thermodynamic modeling for the production of wear-resistant titanium-based coatings for the determination of rational composite powder charges are presented. The use of thermodynamic modeling makes it possible to quantitatively model and predict the composition and properties of complex heterogeneous, multi-element, multi-phase systems in a wide range of temperatures and pressures, considering chemical and phase transformations. The results of research on wear resistance revealed that, when tested under friction-sliding conditions, the best wear resistance among the considered alloyed titanium coatings was achieved by coatings alloyed with chromium and silicon. Their wear resistance is 1.7-1.9 times higher than that of coatings obtained under isothermal conditions.
复合粉末装药制备耐磨涂层的热力学建模
摘要本文综述和分析了冶金生产中腐蚀性环境下零件耐磨涂层的制备方法。这些问题的解决与产品表层的硬化有关。目前,由于大多数工业的发展都与零件工作环境的负荷、温度和侵蚀性的增加有关,因此,它们在机器和机械的耐用性方面所起的作用尤为突出。钛化工艺是提高机器零件、工具和技术设备的可靠性和耐用性的有效方法,因为在加工零件的表面产生了一层具有独特物理和化学性能的钛化层。本文介绍了耐磨钛基涂层生产的热力学模拟结果,用于确定合理的复合粉末装药。热力学建模的使用使得在广泛的温度和压力范围内,考虑化学和相变,定量建模和预测复杂的非均相、多元素、多相系统的组成和性质成为可能。耐磨性研究结果表明,在摩擦滑动条件下,铬硅合金涂层的耐磨性最好。其耐磨性比等温条件下获得的涂层高1.7-1.9倍。
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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