纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 247-253.doi: 10.13475/j.fzxb.20250905102
GUO Juntao1,2, BAO Wei1,2(
), LIU Dianbo3
摘要:
高温极端天气频发使人体热应激风险加剧,能够自主感知湿度变化并调节织物结构的湿响应纺织品需求日益提升。从纤维、纱线和织物结构设计3个层面,综述了湿响应针织物的设计方法、工作原理与性能特点。通过纤维改性或亲/疏水双组分设计实现纤维湿态下弯曲性能发生变化;通过设计纱线螺旋结构、织物不对称线圈可以调控湿态下线圈长度和形状变化;通过对纱线或织物的亲疏水多组分设计,可实现湿态下弯曲变形。然而目前还存在评价体系缺失、材料成本高、工艺复杂、耐久性有待提高及缺乏真实应用环境测试等问题。对于未来的湿响应针织物,可选用生物基绿色纤维,针对不同出汗速率工况定制面料响应特性,进一步研发纺织和整理工艺,以达成低成本、绿色环保、舒适耐用的目标,并最终实现规模化工业生产。
中图分类号:
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