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钛及其合金表面固体粉末渗镀研究进展
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作者单位:

昆明理工大学 材料科学与工程学院,云南 昆明 650093

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中图分类号:

TG174.445;TG146.23

基金项目:

国家自然科学基金(52261018)


Research Advances on Solid Powder-Pack Infiltration on Surface of Titanium and Its Alloys
Author:
Affiliation:

School of Materials Science and Engineering, Kunming University of Science and Technology, Kunming 650093, China

Fund Project:

The National Natural Science Foundation of China (Regional Program)

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    摘要:

    钛及钛合金由于硬度低、耐磨性差、高温抗氧化性能弱的特点限制了它在复杂环境下的应用。固体粉末渗镀技术可以有效提高钛及其合金的表面硬度、耐磨性以及高温性能。固体粉末渗镀温度、保温时间以及渗剂对渗层的形貌都具有较为明显的影响。碳元素和硼元素的渗入,可以显著提高其表面硬度和耐磨性,而铝元素的渗入可以提高钛合金的高温抗氧化性能,同时增强渗层与基体的结合力。通过调整工艺可以制备多组元的渗层结构,从而获得优异的综合性能。但目前仍存在渗硼层表面疏松、渗层与基体结合力较弱、多元固体粉末渗镀技术有待完善以及渗镀时间长、温度高等问题待解决。

    Abstract:

    Titanium and its alloys exhibit inherent limitations in complex environments due to their low hardness, poor wear resistance, and weak high-temperature oxidation resistance. Solid powder-pack infiltration technique can effectively enhance the surface hardness, wear resistance, and high-temperature performance of titanium and its alloys. The morphology of the infiltration layer is significantly influenced by temperature, holding time, and infiltration agent. The incorporation of carbon and boron elements can substantially improve surface hardness and wear resistance, while aluminum infiltration enhances high-temperature oxidation resistance and strengthens the interfacial bonding between the infiltration layer and substrate. By optimizing process parameters, multi-component layers can be fabricated to achieve superior comprehensive properties. However, there are still some problems to be solved, including surface porosity in borided layers, weak adhesion between the infiltration layer and substrate, incomplete development of multi-element solid powder-pack infiltration techniques, long processing time, and high temperature.

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唐梓焜,段永华,郑善举,彭明军,李萌蘖,李俊.钛及其合金表面固体粉末渗镀研究进展[J].稀有金属材料与工程,2025,54(1):263~279.[Tang Zikun, Duan Yonghua, Zheng Shanju, Peng Mingjun, Li Mengnie, Li Jun. Research Advances on Solid Powder-Pack Infiltration on Surface of Titanium and Its Alloys[J]. Rare Metal Materials and Engineering,2025,54(1):263~279.]
DOI:10.12442/j. issn.1002-185X.20240517

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历史
  • 收稿日期:2024-08-14
  • 最后修改日期:2024-10-08
  • 录用日期:2024-10-15
  • 在线发布日期: 2025-01-24
  • 出版日期: 2025-01-20