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Effect of surface oxygen content and roughness on interfacial adhesion in carbon fiber-polycarbonate composites

机译:表面氧含量和粗糙度对碳纤维-聚碳酸酯复合材料界面粘合的影响

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The effect of surface chemistry and rugosity on the interfacial adhesion between Bisphenol-A Polycarbonate and a carbon fiber surface subjected to surface treatment to add surface oxygen groups was investigated. The surface oxygen content of PAN based intermediate modulus IM7 carbon fibers was varied by an oxidative surface treatment. The oxygen content of the carbon fiber surface increased from 4 to 22% by changing the degree of surface treatment from 0 to 400% of nominal commercial surface treatment levels. The oxidative surface treatment also causes an increase in surface roughness by creating pores and fissures in the surface by removing carbon from the regions between the graphite crystallites. To decouple the effects of surface roughness and the surface oxides on the interfacial adhesion, the oxidized fiber surface was passivated via hydrogenation at elevated temperature. Thermal hydrogenation removes the oxides on the surface without significantly altering the surface topography. The results on interfacial adhesion tests indicate that a increase in the oxygen content of the fiber does not increase the fiber-matrix interfacial adhesion significantly. Comparing adhesion results between oxidized and hydrogen passivated fibers shows that the effect of the surface roughness on the interfacial adhesion is also insignificant. Overall, dispersive interactions alone appear to be the primary factor in adhesion of carbon fibers to thermoplastic matrices in composites.
机译:研究了表面化学性质和皱纹度对双酚A聚碳酸酯与经过表面处理以添加表面氧基团的碳纤维表面之间的界面粘合力的影响。 PAN基中模量IM7碳纤维的表面氧含量通过氧化表面处理而变化。通过将表面处理程度从名义商业表面处理量的0%更改为400%,碳纤维表面的氧含量从4%增加到22%。氧化表面处理还通过从石墨微晶之间的区域除去碳而在表面上形成孔和裂缝,从而引起表面粗糙度的增加。为了消除表面粗糙度和表面氧化物对界面粘附力的影响,经过氧化的纤维表面在高温下通过氢化钝化。热氢化去除了表面上的氧化物,而没有显着改变表面形貌。界面粘合力测试的结果表明,纤维中氧含量的增加并未显着提高纤维-基质界面粘合力。比较氧化的和氢钝化的纤维之间的粘合结果表明,表面粗糙度对界面粘合的影响也微不足道。总体而言,分散相互作用似乎是碳纤维与复合材料中热塑性基体粘合的主要因素。

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