纺织学报 ›› 2026, Vol. 47 ›› Issue (05): 114-122.doi: 10.13475/j.fzxb.20250700601
孙哲茹1, 李奕萱2,3, 丁泽龙2,3, 王瑜4, 惠苗4, 夏鑫2,3(
)
SUN Zheru1, LI Yixuan2,3, DING Zelong2,3, WANG Yu4, HUI Miao4, XIA Xin2,3(
)
摘要:
为增强形状记忆纺织品在多形状下的形状固定及回复效果,构建了铰链增强的复合织物体系。使用3D打印技术制备了聚氨酯(TPU)与聚乳酸(PLA)共混的形状记忆铰链,通过改变铰链中TPU与PLA的质量比,研究了其对材料微观结构、热力学性能的影响规律,进而调控铰链的形状记忆行为。结果表明,当TPU与PLA质量比为7∶3时,两相间通过氢键形成有效界面结合,PLA结晶度适中,材料在室温下具备较高的储能模量(137 MPa)与良好的延展性(断裂伸长率318.19%),实现了刚-韧平衡,从而获得最优的形状记忆性能(固定率95%,回复率95.6%)。在此基础上,采用提花织造工艺将优化后的铰链嵌入织物双层结构中,成功制备出结构-功能一体化的复合织物。该铰链增强织物在多种几何形变中均表现出优异的形状固定精度(角度偏差<5°)与回复完整性,显著优于无铰链织物。本研究从多尺度阐明TPU/PLA体系的协同机制,为开发高性能、可编程形状记忆纺织品提供了有效的材料设计与结构集成方案。
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