Research on Electric Field Homogenization in Radial Multi-Nozzle Electrospinning

Nanomaterials Pub Date : 2024-07-14 DOI:10.3390/nano14141199
Jian Liu, Shoujun Dong, Chenghao Wang, Yanbo Liu, Shanshan Pan, Zhaosong Yin
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Abstract

Electrospinning is an effective method to prepare nanofibers at present. Aiming at problems such as low spinnable viscosity and the low productivity of the traditional multi-needle, a radial nozzle was proposed in this paper. In order to solve the problem of end effects in multi-nozzle electrospinning, COMSOL Multiphysics 6.0 software was used to simulate the electric field in electrospinning with seven radial nozzles. And the influence on the electric field intensity and distribution of the structural parameters of the radial nozzle, including the number, length, tip-shape, and tip-pointing direction of the vanes, were studied. Then, the electric field intensity of any point on the central axis of a radial nozzle was obtained based on the principle of electric field superposition, and then the rotation angle of the vanes corresponding to the minimum Coulomb repulsion force on the target point was deduced. At last, the method of electric field homogenization of a rotating vane arrangement was obtained. In the simulation, the strength and homogenization of the electric field were taken as the research objective, and the optimum structure parameters of the radial nozzle were obtained; the uniform theory of the electric field based on the orientation of the vanes was verified. Then, electrospinning with seven radial nozzles was performed, and it was found that each radial nozzle can produce multiple jets during electrospinning, and the prepared electrospun membranes have even thickness and high porosity. What is more, the fibers are relatively finer and more uniform.
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径向多喷嘴电纺丝中的电场均匀化研究
电纺丝是目前制备纳米纤维的一种有效方法。针对传统多喷嘴可纺粘度低、生产效率低等问题,本文提出了一种径向喷嘴。为了解决多喷嘴电纺丝中的末端效应问题,本文使用 COMSOL Multiphysics 6.0 软件模拟了七个径向喷嘴电纺丝中的电场。研究了叶片的数量、长度、尖端形状和尖端指向方向等径向喷嘴结构参数对电场强度和分布的影响。然后,根据电场叠加原理得到了径向喷嘴中心轴上任意一点的电场强度,进而推导出目标点上库仑斥力最小时对应的叶片旋转角度。最后,得到了旋转叶片排列的电场均匀化方法。在仿真中,以电场强度和均匀化为研究目标,获得了径向喷嘴的最佳结构参数,验证了基于叶片方向的电场均匀理论。然后,用七个径向喷嘴进行了电纺,发现每个径向喷嘴在电纺过程中都能产生多个喷流,制备的电纺膜厚度均匀,孔隙率高。此外,纤维相对更细、更均匀。
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