4.7 Article

Multiscale concurrent design and 3D printing of continuous fiber reinforced thermoplastic composites with optimized fiber trajectory and topological structure

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COMPOSITE STRUCTURES
卷 285, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.compstruct.2022.115241

关键词

3D printing; Multiscale design; Structure optimization; Continuous fiber; Fiber reinforced composite

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A multiscale design and manufacturing strategy was developed for continuous fiber reinforced thermoplastic composites (CFRTPCs), which integrated the concurrent optimization of micro fiber orientation and macro structural topology, and realized by ingenious path planning for 3D printing process. The experimental results verified the effectiveness of this strategy, showing significant improvements in structural stiffness and peak load for different scale structures.
3D printing of continuous fiber reinforced thermoplastic composites (CFRTPCs) enables the fabrication of multiscale structures, whose features can simultaneously span the microscale fiber trajectory and macroscale topological structure. In this study, a multiscale design and manufacturing strategy integrating concurrent optimization of micro fiber orientation and macro structural topology was developed for CFRTPCs and realized by ingenious path planning for 3D printing process. Typical structures, such as Messerschmitt-Bolkow-Blohm (MBB) beam and cantilever beam, were verified experimentally in comparison with the monoscale structures. Structural stiffness and peak load could be improved by 36.27% and 64.43% respectively for MBB beam, 123.07% and 52.16% respectively for cantilever beam, showing the significant influence on concurrent material and structure design for CFRTPCs. Multiscale concurrent design and 3D printing could promote the potential of CFRTPCs, and even challenge traditional design and manufacturing mechanism relating material and structure scale.

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