电场聚焦模式下的电流体动力印刷数值分析

Dongqiao Bai, Jin Huang, Jianjun Wang, H. Gong, Chaoyu Liang, Jinquan Zhang
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摘要

作为一种新兴的微米/纳米级三维打印技术,电流体动力(EHD)打印近年来得到了快速发展。然而,在大多数 EHD 打印工艺中,电压直接作用于喷嘴和基底,导致电场受打印高度的影响。这给打印三维曲面结构带来了挑战。本研究采用一种新颖的电压加载方法,将电极与喷嘴和基底分开,对 EHD 喷射过程进行了全面研究。通过实验设置和数值模拟,本研究考察了打印高度、电压和电极直径对喷射行为的影响。结果表明,与传统的电极形式相比,新的电压加载方法将喷射前液体表面的电场强度提高了 37.1%,更有利于泰勒锥的形成。当打印高度在喷嘴直径的 1.5-2.5 倍之间变化时,它能确保打印波动小于 2.4%,更有利于打印多层结构。本模型中提供了弹射的阈值电压。当电极减小时,电场利用效率会进一步提高,但喷射速度的加快会导致液滴尺寸增大。研究结果凸显了该方法在不同条件下保持液滴大小和电场强度一致的能力,从而提高了印刷稳定性和效率。这项研究的创新为推进微米/纳米三维打印技术提供了宝贵的见解,强调了在实际工程应用中改进 EHD 打印工艺的潜力。
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Numerical analysis of electrohydrodynamic printing under electric field focusing mode
As an emerging micro/nanoscale 3D printing technology, Electrohydrodynamic (EHD) printing has undergone rapid development in recent years. However, in most EHD printing processes, voltage is directly applied to both the nozzle and the substrate, resulting in the electric field being influenced by the printing height. This poses challenges for printing three-dimensional curved surface structures. This study presents a comprehensive investigation into the EHD jetting process, utilizing a novel voltage loading method that separates electrodes from both the nozzle and the substrate. Through experimental setups and numerical simulations, this research was conducted to examine the effects of printing height, voltage, and electrode diameter on jetting behavior. The results show that compared to the traditional electrode form, the new voltage loading method will increase the electric field intensity of the liquid surface before ejection by 37.1% and is more conducive to the formation of Taylor cones. It can ensure that the printing fluctuation is less than 2.4% when the printing height varies between 1.5-2.5 times the nozzle diameter, which is more favorable for printing multi-layer structures. The threshold voltage for ejection is provided in this model. When the electrode is reduced, the efficiency of electric field utilization will be further improved, but the acceleration of the jet velocity will cause an increase in droplet size. The findings highlight the method's capability to maintain consistent droplet sizes and electric field intensities across varying conditions, thereby enhancing printing stability and efficiency. The study's innovations provide valuable insights for advancing micro/nano 3D printing technologies, emphasizing the potential for improved EHD printing processes in practical engineering applications.
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