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首页> 外文期刊>Journal of Manufacturing Processes >Droplet formation and settlement of phase-change ink in high resolution electrohydrodynamic (EHD) 3D printing
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Droplet formation and settlement of phase-change ink in high resolution electrohydrodynamic (EHD) 3D printing

机译:高分辨率电液动力学(EHD)3D打印中相变油墨的液滴形成和沉降

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摘要

This paper presents a modeling framework to model the droplet formation and settlement on substrate of phase-change ink in high resolution electrohydrodynamic (EHD) printing process, which can successfully produce sub 10-μm droplet footprints and 30 microstructure. We have used Finite Element Analysis (FEA) to develop the model for droplet formation and droplet settlement. Two important competitive forces in EHD printing, electrostatic force and surface tension force are modeled by FEA The droplet size is obtained by balancing the electrostatic force and surface tension of the pending droplets at the tip of the meniscus under different printing conditions. With the results from FEA analysis about the charge on a droplet and electrostatic field distribution, the droplets in-flight velocity and impact velocity on the substrate are derived numerically. With the derived impact velocity, the droplet spreading and settlement on the substrate is also modeled by FEA. The results from FEA models are compared with the experimental measured droplet dimensions at different process conditions to validate the developed model, which demonstrate very good agreement between the experimental results and model prediction. We have successfully applied EHD printing process for phase-change wax material, which is widely used in 3D printing or additive manufacturing for supporting and model material, to achieve high resolution sub 10-μm 3D structures.
机译:本文提出了一种建模框架,用于在高分辨率电液动力学(EHD)印刷过程中对相变油墨在基材上的液滴形成和沉降进行建模,该模型可以成功产生10μm以下的液滴足迹和30个微结构。我们已经使用有限元分析(FEA)来开发液滴形成和液滴沉降的模型。通过FEA对EHD印刷中的两个重要竞争力进行了建模,即静电力和表面张力。通过在不同印刷条件下平衡弯月面尖端未决液滴的静电力和表面张力,可以得到液滴尺寸。利用有关液滴上电荷和静电场分布的FEA分析结果,可以数值计算出液滴的飞行速度和对基板的撞击速度。利用导出的冲击速度,还可以通过FEA对液滴在基材上的扩散和沉降进行建模。将FEA模型的结果与不同工艺条件下的实验测得的液滴尺寸进行比较,以验证开发的模型,这表明实验结果与模型预测之间具有很好的一致性。我们已经成功地将EHD打印工艺应用于相变蜡材料,该工艺已广泛用于3D打印或用于辅助材料和模型材料的增材制造,以实现高分辨率的10微米以下3D结构。

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