Influence of heat treatment on the structure, phase composition, and properties of an orthorhombic titanium aluminum alloy obtained by selective laser melting

IF 0.8 4区 材料科学 Q4 METALLURGY & METALLURGICAL ENGINEERING
S. L. Demakov, A. G. Illarionov, S. I. Stepanov, M. S. Karabanalov, M. A. Shabanov, A. A. Popov
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Abstract

The impact of heat treatment on the structural-phase characteristics, physical and mechanical properties of an alloy based on orthorhombic titanium aluminide (O-alloy) produced by selective laser melting was investigated using differential scanning calorimetry, scanning electron microscopy, energy-dispersive spectroscopy and X-ray diffraction analysis, and microindentation. Modifying the selective laser melting process parameters, specifically increasing the relative energy density from 49 to 97 J/mm3, results in the evolution of the porosity character of the samples after selective laser fusion. This transition is observed from porosity associated with the lack-of-fusion to the gas porosity inherited from the pores in the powder and gas entrapment during melting. The metastable β‑solid solution that is fixed in the O‑alloy during selective laser melting undergoes decomposition in two temperature ranges, 300–600 °C and 650–800 °C, when heated at a rate of 50 °C per minute up to 900 °C. An increase in the heat treatment temperature from 750 to 900 °C of the as-built O‑alloy results in a reduction in the volume fraction and an expansion in the thickness of the O‑platelets precipitated during the decomposition of the β‑solid solution. This phenomenon leads to a decline in the impact of dispersion hardening (hardness growth) and enhancement in the elastic modulus. This study examines the impact of volumetric energy density during selective laser melting on the chemical composition of the O‑alloy, the stability of as-built alloy to decomposition of β‑solid solution and the formation of a combination of physical and mechanical properties during heat treatment.

Abstract Image

热处理对选择性激光熔化制备的正交钛铝合金的组织、相组成和性能的影响
采用差示扫描量热法、扫描电镜、能量色散光谱、x射线衍射分析和微压痕等方法研究了热处理对选择性激光熔化法制备的正交铝化钛(o -合金)合金的组织物相特征、物理力学性能的影响。改变选择性激光熔化工艺参数,将相对能量密度从49提高到97 J/mm3,导致选择性激光熔化后样品孔隙率特征的变化。这种转变可以从与未熔合相关的孔隙度观察到由粉末中的孔隙和熔合过程中的气体夹持所继承的气体孔隙度。在选择性激光熔化过程中,固定在O -合金中的亚稳β固溶体在300-600 °C和650-800 °C两个温度范围内分解,当以每分钟50 °C的速度加热到900 °C。当热处理温度从750℃提高到900 ℃时,β固溶体分解过程中析出的O -血小板的体积分数降低,厚度增加。这种现象导致分散硬化(硬度增长)的影响下降和弹性模量的增强。本研究考察了选择性激光熔化过程中体积能量密度对O -合金化学成分、β -固溶体分解的稳定性以及热处理过程中形成的物理和机械组合性能的影响。
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来源期刊
Metallurgist
Metallurgist 工程技术-冶金工程
CiteScore
1.50
自引率
44.40%
发文量
151
审稿时长
4-8 weeks
期刊介绍: Metallurgist is the leading Russian journal in metallurgy. Publication started in 1956. Basic topics covered include: State of the art and development of enterprises in ferrous and nonferrous metallurgy and mining; Metallurgy of ferrous, nonferrous, rare, and precious metals; Metallurgical equipment; Automation and control; Protection of labor; Protection of the environment; Resources and energy saving; Quality and certification; History of metallurgy; Inventions (patents).
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