电解等离子体表面淬火对铁素体-珠光体类车轮钢组织和强度性能的影响

Q4 Physics and Astronomy
B. Rakhadilov, Y. Tabiyeva, G. Uazyrkhanova, L. Zhurerova, D. Baizhan
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引用次数: 1

摘要

本文研究了电解液等离子体表面硬化对车轮钢印2的组织和显微硬度的影响。在工作电解质中,在由10%氨基甲酰胺(NH2)2CO+20%碳酸钠Na2CO3的水溶液制成的电解质中进行等离子体表面淬火。研究了轮式钢在电解质等离子体表面淬火后的强度极限、流动性和磨损强度。电解等离子体表面淬火后,在样品表面形成一批高温板和低温板马氏体。研究了车轮钢试样在电解液中淬火后截面显微硬度的测定。研究发现,电解等离子体表面淬火后,该硬化表面层的微硬化值比钢基体增加了≈3倍,硬化层厚度为1000-1500µm。根据扫描透射电子显微镜的结果,电解质等离子体表面淬火引起钢标记2的形态成分的变化。在初始状态下,钢的基体为α相,其形态成分为破碎的未破碎铁素体和珠光体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of electrolytic-plasma surface quenching on the structure and strength properties of ferritic-pearlite class wheel steel
This paper examines the influence of electrolyte-plasma surface hardening on the structure and micro- hardness of wheel steel mark 2. In the work electrolyte-plasma surface quenching was carried out in an electrolyte made from an aqueous solution of 10% carbamide (NH 2 ) 2 CO + 20% sodium carbon- ate Na 2 CO 3 . The work investigated the strength limit, fluidity and wear intensity of the wheeled steel after electrolyte-plasma surface quenching. After electrolytic-plasma surface quenching, a batch, high-temperature plate and low-temperature plate martensit is formed on the surface of the sample. Investigations have been carried out on microhardness determination on cross-section of wheel steel samples after quenching in aqueous solution of electrolyte. It is found that after electrolytic-plasma surface quenching, the microhardening values of this hardened surface layer increased on ≈ 3 times compared to the steel matrix, and the thickness of the hardened layer is 1000-1500 µ m. According to the results of the scanning transmission electron microscopy, the electrolyte-plasma surface quenching caused a change in the morphological constituents of steel mark 2. In the initial state, the matrix of steel is a α -phase, the morphological components of which are fragmented unfragmented ferrite and pearlite.
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来源期刊
Eurasian Journal of Physics and Functional Materials
Eurasian Journal of Physics and Functional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
1.10
自引率
0.00%
发文量
23
审稿时长
5 weeks
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