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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Experimental study on the thermal and mechanical properties of MWCNT/polymer and Cu/polymer composites
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Experimental study on the thermal and mechanical properties of MWCNT/polymer and Cu/polymer composites

机译:MWCNT /聚合物和Cu /聚合物复合材料热力学性能的实验研究

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In this study, the influence of the different conditions of powder treatment on the thermal conductivity of nanocomposites was investigated. Carbon and metal-based polymer composite materials were produced and their thermal and mechanical characteristics were studied. For the fabrication of the composites, the study has explored and proposed the use of MWCNT and Cu as fillers in a polymer matrix. The polymer matrices were thermoplastic resins-polypropylene (PP) and high density polyethylene (HDPE). Ball milling was used as the mechanical method in order to enhance the dispersion of MWCNT and the transformation of the Cu particles. The ball milled MWCNT and Cu powder were examined by field emission scanning electron microscopy (FE-SEM). The thermal conductivity values of the resultant nanocomposites were determined by laser flash method (LFM), indicating the highest thermal conductivity is possessed by the polymer composite reinforced by the highest amount of 60 min-treated powder in every case studied. Comparing the obtained values for thermal conductivity with that of pure polymer the maximum improvements were found to be 105.1%, 79% and 271.5% for MWCNT/PP, MWCNT/HDPE and Cu/HDPE, respectively. Furthermore, experimental results were validated using the Agari-Uno and Nielsen-Lewis thermal conductivity models considering the shape of the filler. The results of deviation were found to be within the maximum 5% of the exact value implying a fine agreement between experimental and modeling data. Also, the tensile strength test was performed to evaluate the tensile strength of thermally conductive composites. In terms of mechanical endurance of the thermally conductive PMCs, ball milled filler (MWCNT or Cu) was found to be more reliable rather than the pristine powder. (C) 2016 Published by Elsevier Ltd.
机译:在这项研究中,研究了粉末处理的不同条件对纳米复合材料导热系数的影响。生产了碳和金属基聚合物复合材料,并研究了它们的热和机械特性。对于复合材料的制造,该研究已经探索并提出了使用MWCNT和Cu作为聚合物基体中的填料的用途。聚合物基体是热塑性树脂-聚丙烯(PP)和高密度聚乙烯(HDPE)。为了增强MWCNT的分散性和Cu颗粒的转变,使用球磨作为机械方法。通过场发射扫描电子显微镜(FE-SEM)检查球磨的MWCNT和Cu粉。通过激光闪光法(LFM)确定所得纳米复合材料的热导率值,表明在每种情况下,用最高量的60分钟处理粉末增强的聚合物复合材料都具有最高的热导率。将获得的导热系数值与纯聚合物的导热系数进行比较,发现最大的改进分别是MWCNT / PP,MWCNT / HDPE和Cu / HDPE为105.1%,79%和271.5%。此外,考虑到填料的形状,使用Agari-Uno和Nielsen-Lewis导热系数模型验证了实验结果。发现偏差的结果在精确值的最大5%以内,这表明实验数据和建模数据之间有很好的一致性。另外,进行抗张强度试验以评价导热复合材料的抗张强度。就导热PMC的机械耐久性而言,发现球磨填料(MWCNT或Cu)比原始粉末更可靠。 (C)2016由Elsevier Ltd.出版

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