Liu Jian, Dong Shoujun, Liu Yongru, Pan Shanshan, Yin Zhaosong
School of Mechanical Engineering, Tiangong University, Tianjin 300387, China.
National Experimental Teaching Demonstrating Center of Engineering Training, Tiangong University, Tianjin 300387, China.
Nanomaterials (Basel). 2025 Mar 19;15(6):461. doi: 10.3390/nano15060461.
A multi-vane and multi-slit electrospinning nozzle for diversion was proposed to respond to the issues of easiness of clogging, existing End Effect among needles in current multi-needle electrospinning, and uncontrollable Taylor cone position in needleless electrospinning. The upper part of the novel nozzle is a cylindrical straight pipe, and the lower part is a flow channel expansion structure composed of multiple vane components that spread outward at an angle. Ansys software was used to study the effect of different opening angles of the vanes on the spreading of the electrospinning solution. In the fluid simulation, for the novel nozzle with a central slit and a support structure, when the vanes have an opening angle of 35° and a length of 11 mm, the droplet holding time is 16 s, twice as long as the nozzle without support (8 s). This result corresponds to the subsequent droplet holding experiment, showing that the support structure aids droplet holding and enhances electrospinning stability. Comsol Multiphysics software was used to investigate the effect of the vanes' parameters on the uniformity of the electric field. The results indicate that when the vanes of the new electrospinning nozzle are set at an opening angle of 35°, with four vanes each 11 mm in length, a receiving distance of 200 mm, and a voltage of 30 kV, the novel nozzle achieves an average electric field intensity of 5.26 × 10⁶ V/m with a CV value of 6.93%. Metal 3D printing was used to create a new nozzle for electrospinning, which successfully produced stable multiple jets and increased nanofiber output.
为解决当前多针电纺中针头易堵塞、存在端部效应以及无针电纺中泰勒锥位置不可控等问题,提出了一种用于分流的多叶片多狭缝电纺喷嘴。该新型喷嘴上部为圆柱形直管,下部为由多个以一定角度向外扩展的叶片组件组成的流道扩展结构。利用Ansys软件研究了叶片不同开口角度对电纺溶液铺展的影响。在流体模拟中,对于具有中心狭缝和支撑结构的新型喷嘴,当叶片开口角度为35°、长度为11 mm时,液滴保持时间为16 s,是无支撑喷嘴(8 s)的两倍。这一结果与后续的液滴保持实验结果相符,表明支撑结构有助于液滴保持并提高电纺稳定性。利用Comsol Multiphysics软件研究了叶片参数对电场均匀性的影响。结果表明,当新型电纺喷嘴的叶片开口角度设置为35°,有四个长度均为11 mm的叶片,接收距离为200 mm,电压为30 kV时,新型喷嘴的平均电场强度为5.26×10⁶ V/m,CV值为6.93%。采用金属3D打印技术制作了一种新型电纺喷嘴,成功产生了稳定的多股射流并提高了纳米纤维产量。