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首页> 外文期刊>RSC Advances >Mechanical and thermal behaviours of graphite flake-reinforced acrylonitrile–butadiene–styrene composites and their correlation with entanglement density, adhesion, reinforcement and C factor
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Mechanical and thermal behaviours of graphite flake-reinforced acrylonitrile–butadiene–styrene composites and their correlation with entanglement density, adhesion, reinforcement and C factor

机译:石墨薄片增强丙烯腈 - 丁二烯 - 苯乙烯复合材料的机械和热行为及其与缠结密度,附着力,增强和C因子的相关性

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摘要

Polymer composites are prepared by melt compounding of acrylonitrile–butadiene–styrene (ABS) and graphite flakes (GFs). The fabrication of ABS/GF composites involves two steps: melt compounding of the ABS matrix and GFs in a vertical twin screw micro-compounder for a period of 3 minutes, and then sample preparation using a micro-injection moulding machine. The GF content is varied from 0 to 40 vol% with respect to the ABS matrix. The composites are characterized through tensile, flexural, impact, hardness and thermal conductivity. The thermo-mechanical behaviour is analysed by dynamic mechanical thermal analysis (DMTA). The ABS/GF composites are found to have a gradual variation in the flexural modulus, with about 6, 25 and 92% increments in the flexural modulus on addition of 1, 9 and 40 vol% of GFs in the polymer matrix, respectively. But this addition of GFs exhibits a small decrement in the tensile strength and elongation at break. The impact strength is also sharply decreased (40% reduction with only 1% GF) with the increasing GF content in the ABS matrix. The DMTA results show an improvement in the storage modulus of ~ 250% at room temperature, and the loss modulus also increases while the damping factor decreases as the GF content increases in the composite. The degree of entanglement increases whereas the reinforcement efficiency and C factor decrease for higher GF content. These are calculated from the data obtained by DMTA. The thermal conductivity of the composites shows an increasing behaviour with an increasing amount of GFs, as a ~250% increment is observed at the 40 vol% loading of GFs. The addition of GFs also increases the melt viscosity, and the same trend is shown by the complex viscosity. Thermogravimetric analysis shows an improvement in the thermal decomposition temperature, and the char yield shows a 35% improvement at 40 vol% loading of GFs. Therefore the GF-reinforced ABS composite with improved thermal conductivity, heat stability, viscoelastic behaviour and flexural modulus can be a promising as well as a suitable composite material for making various electronic and electrical accessories including bipolar plates for fuel cell applications.
机译:聚合物复合材料通过丙烯腈 - 丁二烯 - 苯乙烯(ABS)和石墨薄片(GFS)的熔融配合制备。 ABS / GF复合材料的制备涉及两个步骤:在垂直双螺杆微型复合体中熔化ABS基质和GFS的时间为3分钟,然后使用微注塑机样品制备。相对于ABS矩阵,GF含量从0到40Vol%变化。复合材料的特征在于拉伸,弯曲,冲击,硬度和导热率。通过动态机械热分析(DMTA)分析了热力学行为。发现ABS / GF复合材料具有弯曲模量的逐渐变化,在弯曲模量中分别在聚合物基质中的1,9和40体积%的GF中加入约6,25和92%的增量。但是这种添加的GFS在拉伸强度和断裂处的伸长率下表现出小幅下降。随着ABS基质中的增加GF含量,冲击强度也急剧下降(仅用1%gf减少40%)。 DMTA结果显示在室温下的储存模量〜250%的改善,并且由于GF含量在复合材料中增加,阻尼因子降低时,损耗模量也会增加。缠结程度增加,而增强效率和C因子降低了较高的GF含量。这些由DMTA获得的数据计算。复合材料的导热率显示出越来越多的GFS的行为,在40体积%的GFS中观察到〜250%的增量。添加GFS也增加了熔体粘度,并且通过复合粘度表示相同的趋势。热重分析显示出热分解温度的改善,炭产率显示出40体积%的GFS的35%改善。因此,具有改善的导热率,热稳定性,粘弹性行为和弯曲模量的GF加固ABS复合材料可以是有希望的以及合适的复合材料,用于制造各种电子和电气配件,包括用于燃料电池应用的双极板。

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