通过流体和界面自我适应,通过水凝辅助的可拉伸纤维的微流体线
Guoxu Zhao1, Tinglong Wu1, Ruhai Wang2
1State Key Laboratory of Digital Medical Engineering, Key Laboratory of Biomedical Engineering of Hainan Province, School of Biomedical Engineering, Hainan University, Haikou 570228, P.R. China.
我们开发了一种水凝辅助微流体旋转 (HAMS) 方法,以生产高质量,可拉伸的聚合物纤维. 这种技术克服了难以旋转的弹性体的挑战,使多功能应用成为可能.
科学领域:
- 材料科学 材料科学 材料科学
- 聚合物化学 聚合物化学
- 微流体学 微流体学
背景情况:
- 可拉伸聚合物纤维是有前途的,但由于环境和资源需求,很难生产.
- 像这样的高性能弹性体往往表现出不良的线性,限制了纤维制造.
- 现有的方法在可扩展性和控制纤维特性方面扎.
研究的目的:
- 引入一种新的水凝辅助微流体 (HAMS) 方法,用于生产高质量的可拉伸纤维.
- 为了克服具有挑战性的弹性聚合物旋转能力的限制.
- 展示可控制的纤维生产,具有可调节的特性和多样化的应用.
主要方法:
- 使用微流体在水凝纤维中封装弹性体预聚合物.
- 操纵油/水流和纤维形成的界面动态.
- 使用牺牲式水凝模板来控制纤维尺寸和形态.
主要成果:
- 成功生产了可控制直径 (0.043.70毫米) 和显著长度的纤维.
- 获得了高质量的纤维 (光滑的表面,均,圆形的截面),具有特殊的伸展性 (高达1300%).
- 证明可控制的螺旋纤维生产,具有增强的伸展性和机械合规性.
结论:
- 哈姆斯方法为制造高性能可拉伸纤维提供了可扩展和有效的方法.
- 这种技术可以生产具有可调节性质的纤维,适用于先进的应用.
- 哈姆斯为大量生产高质量的可拉伸纤维提供了强大的工具,用于织品,电子产品和执行器.
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