Structural transformations and their impact on the mechanical and antifriction properties in the process of alloying graphitized hypereutectoid steel with copper

Q4 Materials Science Chimica Techno Acta Pub Date : 2023-10-20 DOI:10.15826/chimtech.2023.10.3.15
Natalia V. Stepanova, Elena A. Lozhkina
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Abstract

The purpose of the work is to develop a cast antifriction material based on an iron-carbon alloy with a high copper content for use in large, heavy duty sliding friction units. Using the casting method in self-hardening liquid glass mixtures, two specimens of hypereutectoid graphitized steel with different copper contents (0.09 and 8.76 wt.%) were produced. To obtain graphite in the steel structure, modification with the silicocalcium (SiCa) was used. The microstructural examination was carried out using optical metallography, SEM and TEM methods. The impact of copper on the structure as well as the mechanical and antifriction properties of graphitized hypereutectoid steel was studied. It was found that adding 8.76 wt.% of copper to the steel composition leads to an increase in the Brinell hardness level of the material from 250 to 300 HB, ultimate tensile strength from 250 to 380 MPa and compressive strength from 1050 to 1200 MPa, which is associated with an increase in the microhardness of pearlite from 350 to 420 HV. To assess the impact of copper on the sliding friction coefficient of graphitized hypereutectoid steel, a curve of sliding friction coefficient vs applied load was plotted; the experiment was carried out according to the liner-on-disk scheme. The wear resistance of materials under sliding friction conditions was also assessed using this method. Copper alloying has a positive effect on the wear resistance of graphitized hypereutectoid steel by increasing the mechanical properties of the material and also by reducing the level of the sliding friction coefficient under boundary lubrication conditions.
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石墨化过共析钢与铜合金化过程中的组织转变及其对力学性能和抗摩擦性能的影响
这项工作的目的是开发一种基于高铜含量的铁碳合金的铸造减摩材料,用于大型重型滑动摩擦装置。采用自硬化玻璃液混合物浇铸的方法,制备了铜含量(0.09和8.76 wt.%)不同的过共析石墨化钢试样。为了在钢结构中获得石墨,采用了硅钙改性的方法。采用光学金相、扫描电镜和透射电镜等方法进行了显微组织分析。研究了铜对石墨化过共析钢组织、力学性能和抗摩擦性能的影响。结果表明,在钢中添加8.76 wt.%的铜可使材料的布氏硬度从250提高到300 HB,抗拉强度从250提高到380 MPa,抗压强度从1050提高到1200 MPa,珠光体显微硬度从350提高到420 HV。为了评估铜对石墨化过共析钢滑动摩擦系数的影响,绘制了滑动摩擦系数随外加载荷的变化曲线;实验采用磁盘衬垫方案进行。采用该方法对材料在滑动摩擦条件下的耐磨性进行了评价。铜合金通过提高材料的力学性能和降低边界润滑条件下的滑动摩擦系数水平,对石墨化过共析钢的耐磨性有积极的影响。
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来源期刊
Chimica Techno Acta
Chimica Techno Acta Chemical Engineering-Chemical Engineering (all)
CiteScore
1.00
自引率
0.00%
发文量
67
审稿时长
4 weeks
期刊最新文献
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