首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Investigations on the influence of graphite filler on dry sliding wear and abrasive wear behaviour of carbon fabric reinforced epoxy composites
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Investigations on the influence of graphite filler on dry sliding wear and abrasive wear behaviour of carbon fabric reinforced epoxy composites

机译:石墨填料对碳纤维增强环氧复合材料干滑磨损和磨粒磨损行为的影响

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摘要

In this experimental study, the dry sliding wear and two-body abrasive wear behaviour of graphite filled carbon fabric reinforced epoxy composites were investigated. Carbon fabric reinforced epoxy composite was used as a reference material. Sliding wear experiments were conducted using a pin-on-disc wear tester under dry contact condition. Mass loss was determined as a function of sliding velocity for loads of 25,50,75, and 100 N at a constant sliding distance of 6000 m. Two-body abrasive wear experiments were performed under multi-pass condition using silicon carbide (SiC) of 150 and 320 grit abrasive papers. The effects of abrading distance and different loads have been studied. Abrasive wear volume and specific wear rate as a function of applied normal load and abrading distance were also determined. The results show that in dry sliding wear situations, for increased load and sliding velocity, higher wear loss was recorded. The excellent wear characteristics were obtained with carbon-epoxy containing graphite as filler. Especially, 10 wt.% of graphite in carbon-epoxy gave a low wear rate. A graphite surface film formed on the counterface was confirmed to be effective in improving the wear characteristics of graphite filled carbon-epoxy composites. In case of two-body abrasive wear, the wear volume increases with increasing load/abrading distance. Experimental results showed the type of counterface (hardened steel disc and SiC paper) material greatly influences the wear behaviour of the composites. Wear mechanisms of the composites were investigated using scanning electron microscopy. Wear of carbon-epoxy composite was found to be mainly due to a microcracking and fiber fracture mechanisms. It was found that the microcracking mechanism had been caused by progressive surface damage. Further, it was also noticed that carbon-epoxy composite wear is reduced to a greater extent by addition of the graphite filler, in which wear was dominated by microplowing/microcutting mechanisms instead of microcracking.
机译:在本实验研究中,研究了石墨填充的碳纤维增强环氧复合材料的干式滑动磨损和两体磨料磨损行为。碳纤维增强的环氧复合材料用作参考材料。使用销盘式磨损测试仪在干接触条件下进行了滑动磨损实验。对于25,50,75和100 N的载荷,在6000 m的恒定滑动距离下,确定质量损失为滑动速度的函数。使用150和320粗砂纸的碳化硅(SiC)在多遍条件下进行了两体式磨料磨损实验。研究了磨削距离和不同载荷的影响。还确定了磨料磨损量和比磨损率与所施加的法向载荷和磨削距离的关系。结果表明,在干式滑动磨损情况下,对于增加的载荷和滑动速度,记录了更高的磨损损失。用含碳-环氧的石墨作为填料可获得优异的磨损特性。特别地,在碳-环氧中10重量%的石墨给出低的磨损率。确认在对置面上形成的石墨表面膜对于改善石墨填充的碳-环氧复合材料的磨损特性是有效的。在两件式磨料磨损的情况下,磨损量会随着负载/磨损距离的增加而增加。实验结果表明,对接面(硬化钢盘和SiC纸)的类型会极大地影响复合材料的磨损性能。使用扫描电子显微镜研究了复合材料的磨损机理。发现碳-环氧复合材料的磨损主要归因于微裂纹和纤维断裂机理。发现微裂纹机理是由进行性表面损伤引起的。此外,还注意到通过添加石墨填料,碳-环氧复合材料的磨损在很大程度上降低了,其中磨损主要由微细加工/微切削机理而不是微裂纹引起。

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