Mechanism and influencing factors analysis of polyethylene oxide electrohydrodynamic printing

Author:

Wang Chunjing12,Zhifu Yin34ORCID,Liu Zixian15,Cheng Yongqiang15,Wei Wei6,Sun Lei15ORCID,Sang Shengbo15

Affiliation:

1. Shanxi Key Laboratory of Micro Nano Sensors & Artificial Intelligence Perception, College of Electronic Information and Optical Engineering Taiyuan University of Technology Taiyuan China

2. Shanxi Research Institute of 6D Artificial Intelligence Biomedical Science Taiyuan China

3. Guangxi Key Laboratory of Automatic Detecting Technology and Instruments Guilin University of Electronic Technology Guilin China

4. The State Key Laboratory of Refractories and Metallurgy Wuhan University of Science and Technology Wuhan China

5. Key Lab of Advanced Transducers and Intelligent Control System of the Ministry of Education Taiyuan University of Technology Taiyuan China

6. Architectural Engineering Institute Shanxi Vocational University of Engineering Science and Technology Jinzhong China

Abstract

AbstractElectrohydrodynamic (EHD) printing is a micro–nano printing technology based on the principles of electric field and fluid dynamics. It is characterized by high resolution, high precision, and high speed, applied to various materials, including metals, ceramics, and organic materials. Compared with traditional printing technologies, EHD printing offers advantages such as low manufacturing cost, simple process, and direct fabrication, making it highly promising in the field of micro–nano manufacturing. Polyethylene oxide (PEO) is a highly water‐soluble polymer that has been widely used in various fields due to its low toxicity and ease of processing. In this study, a finite element simulation model was developed using simulation software to simulate and analyze the mechanisms of focused jetting and deposition of PEO solution under an electric field. Based on the principles of electrohydrodynamics, a self‐built EHD printing system was used to investigate the influence of different solution mass fractions and printing parameters on fiber formation, and the optimal process window of EHD printing PEO solution was obtained. Ultimately, ordered deposition of fiber lines ranging from 1.761 to 6.093 μm was achieved. The simulation results were consistent with the experimental results, validating the effectiveness of the established model in guiding jetting outcomes.Highlights Independently building a low‐cost electrohydrodynamic (EHD) printing system. Finite element simulation of EHD printing process. Mechanism analysis of PEO solution jetting and deposition. Optimal process window for PEO solution EHD printing. Influence of key process parameters on fiber forming width.

Funder

Guangxi Zhuang Autonomous Region Key Laboratory of Automatic Detecting Technology and Instruments, Guilin University of Electronic Technology

National Natural Science Foundation of China

State Key Laboratory of Refractories and Metallurgy

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,General Chemistry,Materials Chemistry,Polymers and Plastics,General Chemistry

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