TY - JOUR
T1 - Multi-Material Ink Direct Writing System with Material Switching Optimization
AU - Jing, Xishuang
AU - Shen, Boyan
AU - Yang, Lesheng
AU - Ran, Jihao
AU - Du, Xunsheng
AU - Xie, Fubao
N1 - Publisher Copyright:
Copyright 2025, Mary Ann Liebert, Inc., publishers.
PY - 2025
Y1 - 2025
N2 - Multi-material direct ink writing (M-DIW) is an advanced additive manufacturing technology capable of fabricating complex soft polymeric structures. However, material switching during M-DIW presents challenges such as switching lag and coextrusion, which significantly affect printing accuracy and fidelity. To address these issues, this study develops an M-DIW system integrating a pneumatic extrusion control system and a multichannel printhead, enabling material switching during printing. To enhance printing performance, a flow rate-pressure model is established to analyze ink extrusion dynamics, and a static ink pre-extrusion control strategy is proposed to minimize switching lag while mitigating coextrusion effects. Experimental validation demonstrates that the proposed method effectively improves material switching precision, ensuring high-resolution multi-material printing. Multiple printing case studies, including checkerboard patterns and functional soft structures, confirm that the system can achieve rapid material switching during printing while ensuring sharp material boundaries. This research provides an optimized method for M-DIW printing, broadening the scope of complex soft structures that can be designed and manufactured.
AB - Multi-material direct ink writing (M-DIW) is an advanced additive manufacturing technology capable of fabricating complex soft polymeric structures. However, material switching during M-DIW presents challenges such as switching lag and coextrusion, which significantly affect printing accuracy and fidelity. To address these issues, this study develops an M-DIW system integrating a pneumatic extrusion control system and a multichannel printhead, enabling material switching during printing. To enhance printing performance, a flow rate-pressure model is established to analyze ink extrusion dynamics, and a static ink pre-extrusion control strategy is proposed to minimize switching lag while mitigating coextrusion effects. Experimental validation demonstrates that the proposed method effectively improves material switching precision, ensuring high-resolution multi-material printing. Multiple printing case studies, including checkerboard patterns and functional soft structures, confirm that the system can achieve rapid material switching during printing while ensuring sharp material boundaries. This research provides an optimized method for M-DIW printing, broadening the scope of complex soft structures that can be designed and manufactured.
KW - 3D printing
KW - M-DIW
KW - material switching optimization
KW - pneumatic extrusion control
UR - https://www.scopus.com/pages/publications/105009372399
U2 - 10.1089/3dp.2025.0043
DO - 10.1089/3dp.2025.0043
M3 - 文章
AN - SCOPUS:105009372399
SN - 2329-7662
JO - 3D Printing and Additive Manufacturing
JF - 3D Printing and Additive Manufacturing
ER -