纺织学报 ›› 2024, Vol. 45 ›› Issue (04): 89-95.doi: 10.13475/j.fzxb.20221002801
冯亚1,2, 孙颖1,2(), 崔艳超3, 刘梁森2, 张宏亮3, 胡俊军1,2, 居傲1,2, 陈利1,2
FENG Ya1,2, SUN Ying1,2(), CUI Yanchao3, LIU Liangsen2, ZHANG Hongliang3, HU Junjun1,2, JU Ao1,2, CHEN Li1,2
摘要:
为开发既具有电加热功能特性又满足承载结构基本力学性能要求的玻璃纤维/环氧层合复合材料,选取3种直径的镍铬合金丝,设计制备了平针、罗纹和双罗纹3种组织结构的纬编电加热织物,以镍铬合金丝纬编织物作为中间电加热层,优选热压罐复合成型工艺,制备了玻璃纤维/环氧层合复合材料。利用红外热像仪和万能试验机分别测试了复合材料的电加热性能和层间剪切性能。结果表明:在8 V直流电压下,6种复合材料均能升温到37 ℃ 以上,最高可达72 ℃,耗时30 s;最高平衡温度与镍铬合金丝直径成正相关,平针组织复合材料最高平衡温度最高,双罗纹组织复合材料表面温度均匀性最好;含镍铬合金丝纬编电加热层的玻璃纤维/环氧层合复合材料层间剪切强度相较于不含电加热层复合材料层间剪切强度保留率为74.1%~97.4%。初步研究工作表明,含镍铬合金丝纬编电加热层复合材料可同时实现玻璃纤维/环氧层合复合材料功能与结构的兼顾,有望满足直升机发动机进气道防/除冰系统的设计需求。
中图分类号:
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