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柔性电子器件气溶胶微喷射3D打印的实验与数值研究

Experimental and Numerical Investigation on the Aerosol Micro-Jet 3D Printing of Flexible Electronic Devices.

作者信息

Zhang Yuanming, Zhu Tao, Jiao Junke, Song Shiyu, Wang Zhenqian, Wang Ziwen

机构信息

School of Mechanical and Vehicle Engineering, Linyi University, Linyi 276000, China.

School of Automation and Electrical Engineering, Linyi University, Linyi, 276000, China.

出版信息

Materials (Basel). 2023 Nov 9;16(22):7099. doi: 10.3390/ma16227099.

Abstract

In this study, the optimal forming parameters for printing flexible circuits using aerosol jet printing technology are explored through numerical simulation and experiments. The printhead during the deposition process is numerically simulated. By employing the controlled variable method, the process parameters such as gas flow rate, working distance, nozzle diameter, and printing speed are selected to investigate their effects on the morphology of the printed lines. Accordingly, single-factor experiments are designed to validate the printing of flexible circuits on both planar and curved substrates. Laser micro-sintering is utilized to improve the conductivity of the printed lines and ultimately fabricate flexible strain sensors. Under the sheath gas flow rate of 400 sccm, carrier gas flow rate of 100 sccm, working distance of 3 mm, nozzle diameter of 500 μm, and printing speed of 10 mm/s, the optimal morphology of the printed lines is achieved with low linewidth characteristics. The variations in the focal ratio, working distance, nozzle diameter, and printing speed significantly affect the minimum feature line width and morphology of the printed lines.

摘要

在本研究中,通过数值模拟和实验探索了使用气溶胶喷射印刷技术印刷柔性电路的最佳成型参数。对沉积过程中的打印头进行了数值模拟。采用控制变量法,选择气体流速、工作距离、喷嘴直径和印刷速度等工艺参数,研究它们对印刷线路形态的影响。据此,设计单因素实验以验证在平面和曲面基板上印刷柔性电路。利用激光微烧结提高印刷线路的导电性,最终制造出柔性应变传感器。在鞘气流速为400 sccm、载气流速为100 sccm、工作距离为3 mm、喷嘴直径为500 μm和印刷速度为10 mm/s的条件下,实现了具有低线宽特征的印刷线路的最佳形态。焦距比、工作距离、喷嘴直径和印刷速度的变化显著影响印刷线路的最小特征线宽和形态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9149/10672330/d18d5d93b3b0/materials-16-07099-g001.jpg

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