TY - JOUR
T1 - 4D printing of continuous fiber composites with embedded microcircuits
T2 - Synergistic enhancement of electrothermal actuation and load-bearing performance
AU - Hou, Zhanghao
AU - Li, Xiaokai
AU - Ding, Haolin
AU - Zhu, Xiaoyang
AU - Tian, Xiaoyong
AU - Shi, Huifa
AU - Zhu, Weijun
AU - Guo, Ruihao
AU - Wang, Chuanyang
AU - Lan, Hongbo
N1 - Publisher Copyright:
© 2025
PY - 2026/1/31
Y1 - 2026/1/31
N2 - To address the long-standing trade-off between heating efficiency and mechanical performance in electrothermally driven 4D printing of continuous carbon fiber-reinforced composites (CFRCs), we propose a dual-process hybrid printing strategy that integrates Electric-Field-Driven Microscale 3D Printing with Fused Deposition Modeling. This approach enables the seamless incorporation of continuous carbon fiber structural layers and silver-paste microcircuits, yielding embedded microcircuit CFRCs (EM-CFRCs). The embedded microcircuits significantly enhance electrothermal heating efficiency while maintaining the intrinsic strength of CFRCs. Experimental results show that EM-CFRCs achieve a heating rate of 5.9 °C/s, representing a 118.5 % improvement compared with conventional CFRCs, while the tensile modulus and structural stiffness remain nearly unchanged (increased by 1.5 %). We develop a predictive model based on multilayer beam theory that accurately captures the electrothermally induced deformation behavior and underlying mechanisms. Finally, we fabricate 4D-printed origami structures with complex geometries that demonstrate rapid actuation. These results highlight the potential of EM-CFRCs for aerospace deployable structures (e.g., solar sails), intelligent morphing components, and other advanced functional devices.
AB - To address the long-standing trade-off between heating efficiency and mechanical performance in electrothermally driven 4D printing of continuous carbon fiber-reinforced composites (CFRCs), we propose a dual-process hybrid printing strategy that integrates Electric-Field-Driven Microscale 3D Printing with Fused Deposition Modeling. This approach enables the seamless incorporation of continuous carbon fiber structural layers and silver-paste microcircuits, yielding embedded microcircuit CFRCs (EM-CFRCs). The embedded microcircuits significantly enhance electrothermal heating efficiency while maintaining the intrinsic strength of CFRCs. Experimental results show that EM-CFRCs achieve a heating rate of 5.9 °C/s, representing a 118.5 % improvement compared with conventional CFRCs, while the tensile modulus and structural stiffness remain nearly unchanged (increased by 1.5 %). We develop a predictive model based on multilayer beam theory that accurately captures the electrothermally induced deformation behavior and underlying mechanisms. Finally, we fabricate 4D-printed origami structures with complex geometries that demonstrate rapid actuation. These results highlight the potential of EM-CFRCs for aerospace deployable structures (e.g., solar sails), intelligent morphing components, and other advanced functional devices.
KW - 4d printing
KW - composites
KW - continuous carbon fibers
KW - embedded microcircuits
KW - heating efficiency
UR - https://www.scopus.com/pages/publications/105025529043
U2 - 10.1016/j.jmapro.2025.11.017
DO - 10.1016/j.jmapro.2025.11.017
M3 - 文章
AN - SCOPUS:105025529043
SN - 1526-6125
VL - 158
SP - 24
EP - 34
JO - Journal of Manufacturing Processes
JF - Journal of Manufacturing Processes
ER -