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Improvement of thermal, electrical and mechanical properties of composites using a synergistic network of length controlled-CNTs and graphene nanoplatelets

机译:使用长度受控的CNT和石墨烯纳米片的协同网络改善复合材料的热,电和机械性能

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摘要

Improving the utilization of industrial thermal waste and abundant solar thermal energy is of immense significance in energy management and thermal engineering. Latent heat thermal storage is one of the emerging methods that employ the large caloric density of materials mainly as a result of its constant-temperature phase-change process. Herein, paraffin was selected as the phase-change matrix which was reinforced with length controlled-carbon nanotubes (LCCNTs) as the primary filler and graphene nanoplatelets (GNPs) as the secondary reinforcing nanoparticles. Electrical conductivity (EC) of samples was tested, and carbon nanotube (CNT) was proved to be more effective in the increase of EC, than GNP. Furthermore, the thermal conductivity of the fabricated composite phase-change material was measured, and at the filler ratio of 5 phr an enhancement of about 148.0% was found compared with that of pristine paraffin. Optimal CNT/GNP ratios were also determined at the maximum enhancement achieved for each property. To observe the effect of LCCNTs on the mechanical properties of composites, polyester resin-based composites were prepared, and the tensile strength results are reported.
机译:在能源管理和热力工程中,提高工业热废料和丰富的太阳能热利用效率具有重要意义。潜热蓄热是新兴的方法之一,主要由于其恒温相变过程而采用了大热量的材料。在本文中,选择石蜡作为相变基质,用长度控制碳纳米管(LCCNT)作为主要填充剂和石墨烯纳米片(GNP)作为辅助增强纳米颗粒进行增强。测试了样品的电导率(EC),事实证明,碳纳米管(CNT)比GNP更有效地提高了EC。此外,测量了所制造的复合相变材料的热导率,并且与原始石蜡相比,在5phr的填充率下发现增强了约148.0%。最佳的CNT / GNP比例也以每种特性获得的最大增强值确定。为了观察LCCNT对复合材料力学性能的影响,制备了聚酯树脂基复合材料,并报道了拉伸强度结果。

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