纺织学报 ›› 2023, Vol. 44 ›› Issue (10): 90-97.doi: 10.13475/j.fzxb.20221000801
姜绍华1,2, 梁帅童1,2(), 裴刘军1,2, 张红娟1,2, 王际平1,2
JIANG Shaohua1,2, LIANG Shuaitong1,2(), PEI Liujun1,2, ZHANG Hongjuan1,2, WANG Jiping1,2
摘要:
为预测染色过程中初始阶段染液侵入织物的流体流动和化学反应过程,以棉织物染色过程为例,建立了包含界面效应的纤维密度函数和哈根-泊肃叶方程,构建了织物润湿阶段的染色动力学和传质模型,模拟了染液侵入织物的染色过程,并通过实验进行了模型验证。结果表明:染液在织物中的流动主要是表面张力的作用,在重力的影响下,染液在织物中的流速随着上升高度逐渐减小,表面张力增大,织物内染液流速也会随之增大;纤维体积分数的增大会导致织物的毛细流动更快地达到平衡状态,从而使染液的扩散时间变短,织物染液浓度降低;染液与纤维之间接触角的变化会影响纤维的润湿性,接触角越大,织物的疏水性越好,染液越难以附着在织物表面,导致织物内染液浓度降低;流体的黏度越大,织物内染液流速越小,染液扩散速率越低。
中图分类号:
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