超细晶钛合金复杂形状成形及高熵防护涂层沉积的数学模型

IF 1.8 4区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING Physical Mesomechanics Pub Date : 2024-12-08 DOI:10.1134/S1029959924060092
R. R. Valiev, A. V. Oleinik, R. N. Asfandiyarov, A. Yu. Nazarov, K. N. Ramazanov, Ya. N. Savina, A. R. Kilmametov
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引用次数: 0

摘要

采用有限元方法模拟了Ti-6Al-4V超细晶合金复杂形状坯料的挤压成形和基于TiVZrCrAl高熵合金的保护涂层的真空弧沉积过程。研究了坯料在挤压过程中形成的温度场。在初始温度速率条件下,确定了变形加热和必要的成形力。分析了挤压过程中坯料的应变速率分布。根据所获得的数据,所选择的温度速率条件允许超细晶钛合金作为初始坯料,而不会影响其力学性能。在复杂形状坯料上的涂层沉积的计算机模拟提供了高熵涂层的温度、化学成分和厚度的值。因此,涂层厚度在6.5 ~ 7.5 μm之间变化,并且在沉积过程中将表面加热到368 ~ 597℃,可以保持合金的超细晶组织。
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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Mathematical Modeling of Complex-Shape Forming of Ultrafine-Grained Ti Alloy and Subsequent Deposition of Protective High-Entropy Coatings

The paper reports on finite element simulation of extrusion of a complex-shaped billet from the ultrafine-grained Ti-6Al-4V alloy and vacuum-arc deposition of a protective coating based on the TiVZrCrAl high-entropy alloy. Temperature fields formed in the billet during extrusion are studied. Deformation heating and the necessary forming force are determined for the initial temperature-rate conditions. The strain rate distribution in the billet during extrusion is also analyzed. According to the obtained data, the chosen temperature-rate conditions allow using the ultrafine-grained titanium alloy as the initial billet without deteriorating its mechanical characteristics. Computer simulation of the coating deposition on the complex-shaped billet provides values of the temperature, chemical composition, and thickness of the high-entropy coating. Thus, the coating thickness varies within 6.5–7.5 μm, and the surface is heated during deposition to 368–597°C, which allows maintaining the ultrafine-grained structure in the alloy.

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来源期刊
Physical Mesomechanics
Physical Mesomechanics Materials Science-General Materials Science
CiteScore
3.50
自引率
18.80%
发文量
48
期刊介绍: The journal provides an international medium for the publication of theoretical and experimental studies and reviews related in the physical mesomechanics and also solid-state physics, mechanics, materials science, geodynamics, non-destructive testing and in a large number of other fields where the physical mesomechanics may be used extensively. Papers dealing with the processing, characterization, structure and physical properties and computational aspects of the mesomechanics of heterogeneous media, fracture mesomechanics, physical mesomechanics of materials, mesomechanics applications for geodynamics and tectonics, mesomechanics of smart materials and materials for electronics, non-destructive testing are viewed as suitable for publication.
期刊最新文献
Mathematical Modeling of Complex-Shape Forming of Ultrafine-Grained Ti Alloy and Subsequent Deposition of Protective High-Entropy Coatings Radial Dependences of the Phase Composition, Nanohardness, and Young’s Modulus for Ti–2 wt % Fe Alloy after High-Pressure Torsion Functional and Mechanical Characteristics of Ultrafine-Grained Fe-Mn-Si Alloys for Biomedical Applications Retained Austenite Transformation and Portevin–Le Chatelier Effect in 44CrMn2Si2Mo Steel under Tension Evolution of the Microstructure and Mechanical Properties of Al-B Composite with the Ultrafine-Grained Aluminum Matrix
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