纺织学报 ›› 2026, Vol. 47 ›› Issue (02): 37-46.doi: 10.13475/j.fzxb.20250908101
魏建斐1,2,3, 魏艳颖1, 马超慧1, 胡晓鹏1, 邴琳涵1, 樊瑜1, 林彬泽1, 董振峰1, 朱志国1, 王锐1,2,3(
)
WEI Jianfei1,2,3, WEI Yanying1, MA Chaohui1, HU Xiaopeng1, BING Linhan1, FAN Yu1, LIN Binze1, DONG Zhenfeng1, ZHU Zhiguo1, WANG Rui1,2,3(
)
摘要:
传统阻燃剂虽能提升聚酰胺(PA66)的阻燃性能,但较高的添加量往往会使PA66可纺性变差并导致纤维力学性能显著下降。为提高PA66纤维的阻燃性能同时兼顾其力学性能,以聚对苯二甲酸乙二醇(PET)废弃物为前驱体使用无溶剂的一步热解法实现了PET废弃物基碳点(rPET-CDs)的宏量制备,单釜(5 L)产量可达1 796 g,产率达72.6%;并系统探究了rPET-CDs对PA66阻燃性、可纺性及纤维性能的影响。结果表明:当添加3%的rPET-CDs时,PA66/rPET-CDs复合物的LOI值达29%,热释放速率峰值下降10.64%;在可纺性方面,rPET-CDs的加入使PA66的纺丝温度从285 ℃降至270 ℃,同时实现了PA66纤维断裂强度和断裂伸长率的协同提升。
中图分类号:
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