纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 79-85.doi: 10.13475/j.fzxb.20251004301
JIANG Chaopeng1, LI Yong2, CHEN Xiaochuan1(
), WANG Jun3
摘要:
为深入研究棉质针刺非织造布中棉纤维之间的表面黏附机制,基于有限元方法构建了二维轴对称模型,采用“纤维素球-纤维素膜”接触构型,模拟微观球-面之间的界面黏附行为。模型引入双线性内聚力本构关系,考虑拉脱路径中的非线性响应,并分析球体半径变化对黏附力的影响。仿真过程中结合表面粗糙度、材料非线性等因素设定合理接触参数。模拟结果与实验的变化趋势基本一致,最大偏差不超过15%。揭示了黏附力随球体半径变化的非单调规律:在半径3.3~13.18 μm范围内,黏附力随半径增大而稳定增加,表明接触面积增大增强了黏附力;当半径进一步增大至14.35 μm和16.54 μm时,黏附力显著下降,此现象源于粗糙纤维素膜表面的微尺度形貌,较大球体无法充分嵌入表面谷底,仅能与凸起接触,导致有效接触面积减小,体现了表面粗糙度对黏附力的“屏蔽效应”。该研究提出的基于内聚力模型的棉纤维表面黏附仿真方法,可为针刺非织造布中纤维结合力的定量分析与优化设计提供理论参考。
中图分类号:
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