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Effect of Carbon Content on Microstructure and Wear Resistance of Fe-Cr-C/TiCN Composites by Spark Plasma Sintering
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College of Materials Science and Engineering, Sichuan University, Chengdu 610065, China

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National Key Research and Development Plan of China (2017YFB0305900); Sichuan Science and Technology Program (2020ZDZX0008)

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    Abstract:

    Fe-Cr-C/TiCN composites with different carbon contents were prepared via mechanical alloying followed by spark plasma sintering. The effects of carbon black content on the microstructure and wear properties of Fe-Cr-C/TiCN composites were systematically investigated by scanning electron microscopy, X-ray diffraction, Vickers hardness test, and ball-on-disk type tribotest. The results show that the (Cr, Fe)7C3 carbides form in the sintered specimens with 1wt%~5wt% carbon, but (Cr, Fe)3C phases appear when the carbon black content reaches 4wt%~5wt%. Carbon black content plays a significant role in the microstructure uniformity and densification of the Fe-Cr-C/TiCN composites. When the sintering temperature is ~1000 °C, the relative density of specimen without carbon addition increases from 95.0% to 99.7% of the specimen with carbon addition of 3wt%, indicating that the full densification is realized. High Vickers hardness of 11 940 MPa is achieved for the specimen with carbon addition of 3wt%. Furthermore, adding an appropriate amount of carbon (3wt%) contributes to the excellent wear properties with narrow fluctuation ranges of friction coefficient, suggesting an average friction coefficient of 0.320 and wear rate of 6.8×10-4 mm3·N-1·m-1.

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[Li Xuejun, Liu Ying, Ye Jinwen, Zhou Tingchuan, Chen Daoying. Effect of Carbon Content on Microstructure and Wear Resistance of Fe-Cr-C/TiCN Composites by Spark Plasma Sintering[J]. Rare Metal Materials and Engineering,2021,50(7):2273~2280.]
DOI:10.12442/j. issn.1002-185X. E20200031

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History
  • Received:July 15,2020
  • Revised:August 03,2020
  • Adopted:August 04,2020
  • Online: August 09,2021
  • Published: July 31,2021