Additive manufacturing with fibre-reinforcement - design guidelines and
investigation into the influence of infill patterns
investigation into the influence of infill patterns
File(s)Plocher et al(2022)_AcceptedManuscript_RPJ.pdf (2.98 MB)
Accepted version
Author(s)
Plocher, Janos
Wioland, Jean-Baptiste
Panesar, Ajit
Type
Journal Article
Abstract
Fibre-reinforced additive manufacturing (FRAM) with short and continuous fibres yields light and stiff parts and thus increasing industry acceptance. High material anisotropy and specific manufacturing constraints shift the focus towards design for AM (DfAM), particularly on toolpath strategies. Assessing the design-property-processing relations of infill patterns is fundamental to establishing design guidelines for FRAM.
Subject to the DfAM factors performance, economy and manufacturability, the efficacy of two conventional infill patterns (grid and concentric) was compared with two custom strategies derived from the medial axis transformation (MAT) and guided by the principal stresses (MPS). The recorded stiffness and strength, the required CPU and print time, and the degree of path undulation and effective fibre utilisation (minimum printable fibre length) associated with each pattern, served as assessment indices for different case studies. Moreover, the influence of material anisotropy was examined, and a stiffness-alignment index was introduced to predict a pattern’s performance.
The highest stiffnesses and strengths were recorded for the MPS infill, emphasising the need for tailoring print paths rather than employing fixed patterns. In contrast to the grid infill, the concentric infill offered short print times and reasonable utilisation of continuous fibres. The MAT-based infill yielded an excellent compromise between the three DfAM factors and experimentally resulted in the best performance.
This constitutes the first comprehensive investigation into infill patterns under DfAM consideration for FRAM, facilitating design and processing choices.
Subject to the DfAM factors performance, economy and manufacturability, the efficacy of two conventional infill patterns (grid and concentric) was compared with two custom strategies derived from the medial axis transformation (MAT) and guided by the principal stresses (MPS). The recorded stiffness and strength, the required CPU and print time, and the degree of path undulation and effective fibre utilisation (minimum printable fibre length) associated with each pattern, served as assessment indices for different case studies. Moreover, the influence of material anisotropy was examined, and a stiffness-alignment index was introduced to predict a pattern’s performance.
The highest stiffnesses and strengths were recorded for the MPS infill, emphasising the need for tailoring print paths rather than employing fixed patterns. In contrast to the grid infill, the concentric infill offered short print times and reasonable utilisation of continuous fibres. The MAT-based infill yielded an excellent compromise between the three DfAM factors and experimentally resulted in the best performance.
This constitutes the first comprehensive investigation into infill patterns under DfAM consideration for FRAM, facilitating design and processing choices.
Date Issued
2022-02-04
Date Acceptance
2022-01-05
Citation
Rapid Prototyping Journal, 2022, 28 (7), pp.1241-1259
ISSN
1355-2546
Publisher
Emerald
Start Page
1241
End Page
1259
Journal / Book Title
Rapid Prototyping Journal
Volume
28
Issue
7
Copyright Statement
© 2021 The Author(s).
License URL
Identifier
https://www.emerald.com/insight/content/doi/10.1108/RPJ-09-2021-0223/full/html
Subjects
Industrial Engineering & Automation
0913 Mechanical Engineering
Publication Status
Published
Article Number
RPJ-09-2021-0223
Date Publish Online
2022-02-04