4.7 Article

Mechanical properties and tribological behavior of Fe/nano-diamond composite prepared by hot-press sintering

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ijrmhm.2020.105412

关键词

Nano-diamond; Fe matrix composite; Hot-press sintering; Tribological properties; Wear resistance

资金

  1. National Natural Science Foundation of China (NSFC) [51775118, 51965005]
  2. Natural Science Foundation of Guangxi [2018GXNSFAA281258]
  3. Guangzhou Foreign Science and Technology Special Cooperation Project [201907010022]
  4. Foshan Core Technical Project [1920001000361]
  5. Guangxi Key Laboratory of Superhard Materials (China Nonferrous Metal Guilin Research Institute of Geology for Mineral Resources) [2019-K-01]
  6. Guangxi Key Laboratory of Processing for Non-ferrous Metals and Featured Materials, Guangxi University [2020GXYSOF12]

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In this study, Fe matrix composites reinforced with nano-diamond (ND) particulates were fabricated by hot-press sintering. The addition of ND resulted in higher hardness, compressive strength, and flexural strength in the composites. Moreover, the wear resistance increased with the increase of ND concentration.
In the present study, Fe matrix composites reinforced with nano-diamond (ND) particulates were fabricated by hot-press sintering. The influence of the concentration of ND on the mechanical and tribological properties of as-sintered Fe/ND composites was investigated. The microstructures and properties of the Fe/ND composites were examined using X-ray diffraction, Raman spectroscopy, and scanning electron microscopy. A pearlite microstructure is formed due to the reaction between Fe and ND in the sintering. The presence of ND provides higher hardness, compressive strength, and flexural strength. The composite with 1 wt% ND exhibits 51.5% higher hardness, 37.4% higher compressive strength, and 76.2% higher flexural strength than sintered Fe. In addition, the wear resistance will increase as the ND concentration increases. Fe/2 wt% ND composite exhibits much lower friction coefficient (COF) and higher wear resistance than a Fe/1 wt% ND composite and sintered Fe.

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