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High-Tensile Strength, Composite Bijels through Microfluidic Twisting

机译:高抗拉强度,通过微流体捻度复合比例

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摘要

Rope making is a millennia old technique to collectively assemble numerous weak filaments into flexible and high tensile strength bundles. However, delicate soft matter fibers lack the robustness to be twisted into bundles by means of mechanical rope making tools. Here, weak microfibers with tensile strengths of a few kilopascals are combined into ropes via microfluidic twisting. This is demonstrated for recently introduced fibers made of bicontinuous interfacially jammed emulsion gels (bijels). Bijels show promising applications in use as membranes, microreactors, energy and healthcare materials, but their low tensile strength make reinforcement strategies imperative. Hydrodynamic twisting allows to produce continuous bijel fiber bundles of controllable architecture. Modelling the fluid flow field reveals the bundle geometry dependence on a subtle force balance composed of rotational and translational shear stresses. Moreover, combining multiple bijel fibers of different compositions enables the introduction of polymeric support fibers to raise the tensile strength to tens of megapascals, while simultaneously preserving the liquid like properties of the bijel fibers for transport applications. Hydrodynamic twisting shows potentials to enable the combination of a wide range of materials resulting in composites with features greater than the sum of their parts.
机译:绳索制作是一个千年的旧技术,可以集体组装许多弱丝,进入柔性和高抗拉强度的束。然而,精致的软质纤维通过机械绳制制品缺乏绞入捆绑的稳健性。这里,通过微流体扭转将具有几千孔孔的拉伸强度的弱微纤维组合成绳索。对于最近引入的纤维,对由双连续的界面堵塞乳液凝胶(Bijels)制成的纤维进行了证明。 Bijels显示有前途的应用用作膜,微反应器,能量和医疗保健材料,但它们的低拉伸强度使得强化策略势在必行。流体动力捻度允许生产连续的Bijel纤维束可控架构。模拟流体流场揭示了束几何依赖性对由旋转和平移剪切应力组成的微妙力平衡。此外,组合多种不同组合物的比基纤维能够引入聚合物支撑纤维以提高抗拉强度,以提高几十兆头血管,同时保留双纤维的液体,用于运输应用。流体动力捻度显示电位,使得各种材料的组合能够形成具有大于其部件总和的复合材料。

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