烧结Fe-C-Cr低合金钢磨损特性试验研究

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL International Journal of Surface Science and Engineering Pub Date : 2017-11-26 DOI:10.1504/IJSURFSE.2017.10009221
T. K. Kandavel, T. Panneerselvam, V. Mohan
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引用次数: 0

摘要

磨损是两种材料相互摩擦时所表现出的共同特性。本研究旨在研究铬(Cr)对粉末冶金(P/M)普通碳钢(Fe-0.5%C)磨损特性的影响,并寻找P/M合金钢最小磨损和摩擦系数的最佳参数。将烧结锻造的普通碳钢和添加1%和2%Cr的P/M合金钢制成圆柱销,按标准进行磨损试验。使用Design Expert (DE)软件进行干滑动磨损试验。Cr的加入降低了由于在铁素体晶粒基体中嵌入碳化物而形成的质量损失。从田口灰关联分析中发现的最小质量损失和摩擦系数的最佳工作参数为50n载荷和113.5 rpm转速,与合金钢无关。
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Experimental investigation on wear characteristics of sintered Fe-C-Cr low alloy steels
Wear is a common property exhibited when two materials rub against each other. The present research work aims to investigate the influence of chromium (Cr) on wear characteristics of powder metallurgy (P/M) plain carbon steel (Fe-0.5%C) and to find optimal parameters for minimum wear loss and frictional coefficient of the P/M alloy steels. The sintered-forged plain carbon steel and with addition of 1% and 2%Cr P/M alloy steels were made into cylindrical pins to conduct wear tests as per the standard. The Design Expert (DE) software was used for conducting the dry sliding wear tests. Addition of Cr reduces the mass loss due to the formation of chromium carbides embedded in the ferrite grain matrix in the microstructure. The optimum working parameters found for the minimum mass loss and coefficient of friction from the Taguchi-grey relational analysis are 50 N load and 113.5 rpm speed irrespective of the alloy steels.
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来源期刊
CiteScore
1.60
自引率
25.00%
发文量
21
审稿时长
>12 weeks
期刊介绍: IJSurfSE publishes refereed quality papers in the broad field of surface science and engineering including tribology, but with a special emphasis on the research and development in friction, wear, coatings and surface modification processes such as surface treatment, cladding, machining, polishing and grinding, across multiple scales from nanoscopic to macroscopic dimensions. High-integrity and high-performance surfaces of components have become a central research area in the professional community whose aim is to develop highly reliable ultra-precision devices.
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