Pan Yanqiao, Zeng Liangcai
Key Laboratory of Metallurgical Equipment and Control Technology of Ministry of Education, Wuhan University of Science and Technology, Wuhan 430081, China.
Hubei Key Laboratory of Mechanical Transmission and Manufacturing Engineering, Wuhan University of Science and Technology, Wuhan 430081, China.
Micromachines (Basel). 2019 Jan 29;10(2):94. doi: 10.3390/mi10020094.
Droplet generation process can directly affect process regulation and output performance of electrohydrodynamic jet (E-jet) printing in fabricating micro-to-nano scale functional structures. This paper proposes a numerical simulation model for whole process of droplet generation of E-jet printing based on the Taylor-Melcher leaky-dielectric model. The whole process of droplet generation is successfully simulated in one whole cycle, including Taylor cone generation, jet onset, jet break, and jet retraction. The feasibility and accuracy of the numerical simulation model is validated by a 30G stainless nozzle with inner diameter ~160 μm by E-jet printing experiments. Comparing numerical simulations and experimental results, period, velocity magnitude, four steps in an injection cycle, and shape of jet in each step are in good agreement. Further simulations are performed to reveal three design constraints against applied voltage, flow rate, and nozzle diameter, respectively. The established cone-jet numerical simulation model paves the way to investigate influences of process parameters and guide design of printheads for E-jet printing system with high performance in the future.
在制造微纳尺度功能结构时,液滴生成过程会直接影响电流体动力喷射(E-jet)打印的过程调控和输出性能。本文基于泰勒-梅尔彻漏电介质模型,提出了一种用于E-jet打印液滴生成全过程的数值模拟模型。在一个完整周期内成功模拟了液滴生成的全过程,包括泰勒锥的产生、射流起始、射流断裂和射流回缩。通过内径约为160μm的30G不锈钢喷嘴进行E-jet打印实验,验证了数值模拟模型的可行性和准确性。对比数值模拟和实验结果可知,周期、速度大小、喷射周期中的四个步骤以及每个步骤中射流的形状均吻合良好。进一步的模拟分别揭示了施加电压、流速和喷嘴直径的三个设计约束条件。所建立的锥射流数值模拟模型为未来研究工艺参数的影响以及指导高性能E-jet打印系统喷头的设计铺平了道路。