碳化硅结合剂金刚石材料具有出色的耐磨性

IF 2.9 Q1 MATERIALS SCIENCE, CERAMICS Open Ceramics Pub Date : 2024-06-26 DOI:10.1016/j.oceram.2024.100627
Steffen Kunze, Björn Matthey, Mathias Herrmann
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引用次数: 0

摘要

研究了通过在金刚石预型件中渗入液态硅而制成的碳化硅结合金刚石材料的磨损行为。喷砂测试(SiC 磨料,5 巴压力)中的磨损行为与微观结构相关。所有与碳化硅结合的金刚石材料都出现了磨损,磨损程度大约是碳化硅参考材料的 10 倍。随着浸润温度的升高,金刚石-碳化硅界面上形成了石墨层。在最高渗入温度(1670 °C)下,石墨层厚度达到约 580 nm。结果表明,石墨层不会对耐磨性产生负面影响。相反,对于石墨层厚度达 70 nm 的材料,耐磨性最多可增加 30%。只有在最高渗透温度下,磨损才会再次增加。不过,这可能更多是由金刚石的内部损坏造成的,而不是由界面上的石墨层造成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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SiC-bonded diamond material with excellent abrasive wear resistance

The wear behavior of SiC bonded diamond materials produced by liquid silicon infiltration in diamond preforms was investigated. The wear behavior in sand blasting tests (SiC abrasives, 5 bar pressure) was correlated with the microstructure. All SiC bonded diamond materials showed a wear, which was approximately 10 times less than the wear behavior of the reference SiC material.

Systematic changed microstructures were created by increasing the infiltration temperature. As the infiltration temperature increases, a graphite layer is formed at the diamond-SiC interface. At the highest infiltration temperature (1670 °C), the layer thickness reaches approx. 580 nm. The results show that wear resistance is not negatively affected by the graphite layer. On the contrary, for materials with a graphite layer thickness of up to 70 nm, the wear resistance increases by up to 30 %. The wear increases again only at the highest infiltration temperature. However, this is probably caused more by the internal damage to the diamonds and not by the graphite layer at the interface.

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来源期刊
Open Ceramics
Open Ceramics Materials Science-Materials Chemistry
CiteScore
4.20
自引率
0.00%
发文量
102
审稿时长
67 days
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