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首页> 外文期刊>RSC Advances >Processability, structural evolution and properties of melt processed biaxially stretched HDPE/MWCNT nanocomposites
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Processability, structural evolution and properties of melt processed biaxially stretched HDPE/MWCNT nanocomposites

机译:熔融加工的双轴拉伸HDPE / MWCNT纳米复合材料的加工性能,结构演变和性能

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Biaxial stretching of melt mixed high density polyethylene (HDPE)/multiwalled carbon nanotube (MWCNT) nanocomposites was conducted in the melt state at different stretching ratios (SRs). The addition of MWCNTs leads to significant strain hardening in the HDPE, greatly improving the stability and thus processability of the stretching process. Scanning electron microscopy shows that the MWCNTs in the polymer matrix are gradually disentangled and randomly oriented in the stretching plane with increasing SRs. All the stretched samples exhibit an increase in crystallinity (about 10%) due to strain induced crystallization and a broadened distribution of crystallite size according to the XRD and DSC results. The mechanical properties of the composites improve with increasing SRs, while they drop off after a SR of 2.5 for the neat HDPE which is likely to be due to the relaxation of polymer chains prior to solidification. The presence of the MWCNTs appears to inhibit this relaxation thus helping to maintain the orientation and mechanical properties at high SRs. The modulus, yield strength and breaking strength of stretched composites with 8 wt% MWCNTs increase by approximately 54%, 85% and 193% respectively compared with the neat HDPE at a SR of 3. The electrical percolation threshold for the unstretched material occurs at 1.9 wt% MWCNTs. As SR increases, the values of critical concentration increase from 1.9 wt% to 4.9 wt% implying the destruction of conductive networks due to an increased inter-particle distance. A loading of 6 wt% MWCNTs is sufficient to ensure that the sheet conductivity is robust to changes in the SR. Decreased values of critical exponent from 1.9 to 1.1 and morphological investigation reveal a transformation of the system structure from three dimensional to two dimensional as SR increases.
机译:熔融混合的高密度聚乙烯(HDPE)/多壁碳纳米管(MWCNT)纳米复合材料的双轴拉伸是在熔融态下以不同的拉伸比(SR)进行的。 MWCNT的添加导致HDPE中的显着应变硬化,从而极大地改善了拉伸过程的稳定性并从而改善了其可加工性。扫描电子显微镜显示,随着SR的增加,聚合物基体中的MWCNT逐渐解缠并在拉伸平面内随机取向。根据XRD和DSC结果,所有拉伸样品由于应变诱导结晶而结晶度增加(约10%),并且晶粒尺寸分布变宽。复合材料的机械性能随SR的增加而提高,而纯HDPE的SR在2.5后下降,这很可能是由于固化前聚合物链的松弛。 MWCNT的存在似乎抑制了这种松弛,因此有助于在高SR下保持取向和机械性能。与纯HDPE在SR为3时相比,含8 wt%MWCNT的拉伸复合材料的模量,屈服强度和断裂强度分别增加了约54%,85%和193%。未拉伸材料的电渗透阈值为1.9重量%MWCNT。随着SR的增加,临界浓度的值从1.9 wt%增加到4.9 wt%,这意味着由于增加的粒子间距离而破坏了导电网络。 6 wt%MWCNT的负载量足以确保薄板电导率对SR的变化具有鲁棒性。临界指数从1.9降低到1.1,形态学研究表明,随着SR的增加,系统结构从三维转换为二维。

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