Liu Bingxiao, Hu Guosheng, Zhang Jingting, Yan Wen
Institute of Macromolecules and Bioengineering, School of Materials Science and Engineering, North University of China Taiyuan 030051 China.
Public Service Platform for Science and Technology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences Shenzhen University Town, 1068 Xueyuan Avenue Shenzhen 518055 PR China.
RSC Adv. 2019 Mar 1;9(13):7057-7064. doi: 10.1039/c8ra10037c.
Herein, we report novel heat-resistant nylon 10T/66/titania dioxide/glass fibre (nylon 10T/66/TiO/GF) composites based on as-synthesised nylon 10T/66, which is a copolymer of poly(decamethylene terephthalamide) (nylon 10T). The non-isothermal crystallization behaviors of nylon 10T/66 and nylon 10T/66/TiO/GF composites were investigated by differential scanning calorimetry (DSC). Jeziorny and Mo equations were used to analyse the crystallization kinetics, whereas the Kissinger method was applied to calculate the activation energy. It turned out that the introduction of TiO and GF could accelerate the crystallization of nylon 10T/66 and exhibited an effective heterogeneous nucleation effect. In addition, we conducted yellowing resistance and mechanical property analysis of the nylon 10T/66/TiO/GF composites. The above results successfully demonstrated that the heat-resistant nylon 10T/66/TiO/GF composites possess higher crystallization temperature and crystallization rate, whiter color, and better yellowing resistance and mechanical properties than previously as-synthesised nylon 10T/66. Consequently, nylon 10T/66/TiO/GF composites have great potential to be used as a heat-resistant engineering plastic.
在此,我们报道了基于合成的尼龙10T/66(聚癸二酰对苯二甲酰胺(尼龙10T)的共聚物)的新型耐热尼龙10T/66/二氧化钛/玻璃纤维(尼龙10T/66/TiO/GF)复合材料。通过差示扫描量热法(DSC)研究了尼龙10T/66和尼龙10T/66/TiO/GF复合材料的非等温结晶行为。采用Jeziorny和Mo方程分析结晶动力学,同时应用Kissinger方法计算活化能。结果表明,TiO和GF的引入可以加速尼龙10T/66的结晶,并表现出有效的异质成核作用。此外,我们对尼龙10T/66/TiO/GF复合材料进行了耐黄变和力学性能分析。上述结果成功证明,与之前合成的尼龙10T/66相比,耐热尼龙10T/66/TiO/GF复合材料具有更高的结晶温度和结晶速率、更白的颜色以及更好的耐黄变和力学性能。因此,尼龙10T/66/TiO/GF复合材料作为耐热工程塑料具有巨大的应用潜力。