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Effect of processing conditions on the structure, electrical and mechanical properties of melt mixed high density polyethylene/multi-walled CNT composites in compression molding

机译:加工条件对压缩成型熔融混合高密度聚乙烯/多壁CNT复合材料的结构,电气和机械性能的影响

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摘要

Processing conditions can significantly influence the structure and properties of polymer nanocomposites. In the present study, melt mixed high density polyethylene (HDPE)/multi-walled carbon nanotube (MWCNT) nanocomposites were prepared via twin-screw extrusion and then compression molded (CM). The effect of heating temperature, pressing time and cooling rate on the structure, electrical and mechanical properties of the CM nanocomposites was systematically investigated. Volume resistivity tests indicate that the nanocomposite with 2 wt.-% MWCNTs, which is in the region of the electrical percolation threshold, is very sensitive to the CM parameters such that heating temperature > pressing time > cooling rate. Generally, the resistivity of nanocomposites decreases with increasing heating temperature and pressing time. Interestingly, the electrical resistivity of the rapidly cooled nanocomposite with 2 wt.-% MWCNTs is about 2 orders lower than that of the slowly cooled nanocomposite which is attributed to the lower crystallinity and smaller crystallites presenting less of an obstacle to the formation of conductive pathways. The tensile properties of the nanocomposite with 2 wt.-% MWCNTs are also influenced by the compression molding parameters to some extent, while those of the nanocomposites with higher MWCNT loading are insensitive to the changes in processing conditions. The modulus of the nanocomposites increases by about 25 to 50 % and 110 to 130 %, respectively, with the incorporation of 2 and 4 wt.-% MWCNTs, which agrees well with the theoretical values predicted from Halpin-Tsai and Mori-Tanaka models. This work has important implications for both process control and the tailoring of electrical and mechanical properties in the commercial manufacture of conductive HDPE/MWCNT nanocomposites.
机译:加工条件会显着影响聚合物纳米复合材料的结构和性能。在本研究中,通过双螺杆挤出制备熔融混合的高密度聚乙烯(HDPE)/多壁碳纳米管(MWCNT)纳米复合材料,然后进行压模(CM)。系统地研究了加热温度,加压时间和冷却速率对CM纳米复合材料的结构,电学和力学性能的影响。体积电阻率测试表明,具有2 wt。%MWCNT的纳米复合材料位于电渗流阈值范围内,对CM参数非常敏感,例如加热温度>压制时间>冷却速率。通常,纳米复合材料的电阻率随着加热温度和加压时间的增加而降低。有趣的是,具有2 wt。%MWCNT的快速冷却的纳米复合材料的电阻率比缓慢冷却的纳米复合材料的电阻率低约2个数量级,这归因于较低的结晶度和较小的微晶,这对形成导电通路的阻碍较小。 MWCNT含量为2 wt%的纳米复合材料的拉伸性能在一定程度上也受到压缩成型参数的影响,而MWCNT含量较高的纳米复合材料的拉伸性能对加工条件的变化不敏感。通过掺入2和4 wt%的MWCNT,纳米复合材料的模量分别增加了约25%至50%和110%至130%,这与Halpin-Tsai和Mori-Tanaka模型预测的理论值非常吻合。这项工作对导电HDPE / MWCNT纳米复合材料的商业生产中的过程控制以及电气和机械性能的调整都具有重要意义。

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