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首页> 外文期刊>Journal of Materials Science >Mechanical properties and thermal conductivity of graphene nanoplatelet/epoxy composites
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Mechanical properties and thermal conductivity of graphene nanoplatelet/epoxy composites

机译:石墨烯纳米片/环氧树脂复合材料的力学性能和导热系数

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Nanocomposites of epoxy with 3 and 5 wt% graphene nanoplatelets (GnPs) were fabricated with GnP sizes of similar to 5 and < 1 mu m dispersed within an epoxy resin using a sonication process followed by three-roll milling. The morphology, mechanical, and thermal properties of the composites were investigated. Tensile and flexural properties measurements of these nanocomposites indicated higher modulus and strength with increasing concentration of small GnPs sizes (< 1 mu m, GnP-C750). The incorporation of larger GnPs sizes (similar to 5 mu m, GnP-5) significantly improved the tensile and flexural modulus but reduced the strength of the resulting composites. At 35 A degrees C, the dynamic storage modulus of GnP-5/epoxy composites increased with increasing platelet concentration, and improved by 12 % at 3 wt% and 23 % at 5 wt%. The smaller GnP-C750 increased the storage modulus by 5 % at 3 wt% loading but only 2 % at 5 wt% loading. The glass transition temperatures of the composites increased with increasing platelet concentration regardless of the GnP particle size. A marked improvement in thermal conductivity was measured with the incorporation of the larger GnP size reaching 115 % at 5 wt% loading. The effects of different platelet sizes of the GnP reinforcement on the damage mechanisms of these nanocomposites were studied by scanning electron microscopy.
机译:使用超声处理,然后进行三辊研磨,制备了具有3和5 wt%石墨烯纳米片(GnP)的环氧树脂纳米复合材料,其GnP尺寸类似于5且<1μm,分散在环氧树脂中。研究了复合材料的形态,机械和热性能。这些纳米复合材料的拉伸和弯曲性能测量表明,随着小GnPs尺寸(<1μm,GnP-C750)浓度的增加,模量和强度更高。掺入较大尺寸的GnP(类似于5微米,GnP-5)可以显着改善拉伸模量和弯曲模量,但会降低所得复合材料的强度。在35摄氏度时,GnP-5 /环氧复合材料的动态储能模量随血小板浓度的增加而增加,在3 wt%时提高了12%,在5 wt%时提高了23%。较小的GnP-C750在3 wt%的负载量下储能模量提高了5%,而在5 wt%的负载下储能模量仅提高了2%。不管GnP粒径如何,复合材料的玻璃化转变温度都随血小板浓度的增加而增加。通过掺入较大的GnP尺寸(在5 wt%的负载下达到115%),可以测量出导热性的显着改善。通过扫描电子显微镜研究了不同血小板大小的GnP增强剂对这些纳米复合材料损伤机制的影响。

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