VT22钛合金体积和表面氢化动力学及结构形成

IF 0.4 Q4 METALLURGY & METALLURGICAL ENGINEERING
S. V. Skvortsova, A. V. Shalin, O. N. Gvozdeva, A. S. Stepushin, G. T. Zainetdinova
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引用次数: 0

摘要

摘要:研究了饱和条件下两相VT22钛合金(Ti-5.5Al-4.3V-4.2Mo-0.8Cr-0.8Fe)的加氢动力学。研究表明,通过控制加氢退火的浓度和时间参数,可以改变氢的渗透深度和α→β转变的完整性。此外,合金的状态可以从两相(α + β)转变为单相β状态。屏障涂层可用于调节氢渗透的方向,从而产生单向梯度结构。单向表面加氢的氢渗透深度比等向表面加氢的氢渗透深度大1 mm。表面单向加氢的吸氢速率比体积加氢的吸氢速率低1.2倍。此外,表层的氢含量比每样品体积的氢浓度高0.2 wt %。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bulk and Surface Hydrogenation Kinetics and Structure Formation in a VT22 Titanium Alloy

Bulk and Surface Hydrogenation Kinetics and Structure Formation in a VT22 Titanium Alloy

Abstract—The hydrogenation kinetics of a two-phase VT22 titanium alloy (Ti–5.5Al–4.3V–4.2Mo–0.8Cr–0.8Fe) is investigated depending on saturation conditions. This study demonstrates that the depth of hydrogen penetration and the completeness of the α → β transformation can be varied by controlling the concentration and time parameters of hydrogenation annealing. Furthermore, the state of the alloy can be altered from a two-phase (α + β) to a single-phase β state. Barrier coatings can be employed to regulate the direction of hydrogen penetration, thereby creating a unidirectional gradient structure. The hydrogen penetration depth of unidirectional surface hydrogenation is shown to be 1 mm greater than that of equidirectional surface hydrogenation. The rate of hydrogen absorption is found to be 1.2 times lower during surface unidirectional hydrogenation than during volumetric hydrogenation. Furthermore, the hydrogen content in the surface layer is 0.2 wt % higher than the hydrogen concentration per sample volume.

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来源期刊
Russian Metallurgy (Metally)
Russian Metallurgy (Metally) METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
0.70
自引率
25.00%
发文量
140
期刊介绍: Russian Metallurgy (Metally)  publishes results of original experimental and theoretical research in the form of reviews and regular articles devoted to topical problems of metallurgy, physical metallurgy, and treatment of ferrous, nonferrous, rare, and other metals and alloys, intermetallic compounds, and metallic composite materials. The journal focuses on physicochemical properties of metallurgical materials (ores, slags, matters, and melts of metals and alloys); physicochemical processes (thermodynamics and kinetics of pyrometallurgical, hydrometallurgical, electrochemical, and other processes); theoretical metallurgy; metal forming; thermoplastic and thermochemical treatment; computation and experimental determination of phase diagrams and thermokinetic diagrams; mechanisms and kinetics of phase transitions in metallic materials; relations between the chemical composition, phase and structural states of materials and their physicochemical and service properties; interaction between metallic materials and external media; and effects of radiation on these materials.
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