Compaction-Pressure Regulation for Automated Fiber Placement of Advanced Polymer Composites Based on Simulation Planning and Closed-Loop Control Compensation

Automated fibre placement (AFP) is a key process for manufacturing advanced polymer–matrix composite aerostructures; however, an uneven compaction-pressure distribution of tows during lay-up reduces the inter-laminar bonding strength and induces processing defects such as bridging and wrinkles. In this study, a pressure regulation strategy coordinating simulation-based feed-forward planning with closed-loop feedback control is proposed as a modified processing route for improving the manufacturing quality of polymer composites. The strategy adopts a two-layer “planning–execution” architecture. In the planning layer, process parameters and placement trajectories are optimized in advance based on a compaction-roller pressure simulation model and a compaction-uniformity index. In the execution layer, closed-loop pressure control suppresses on-site disturbances in real time to ensure that the simulation objectives are realized, thereby achieving uniform control of the compaction-pressure field. Finally, multi-angle lay-up experiments were carried out on a convex-surface mould, and the pressure field was measured using pressure-sensitive films. The results show that the proposed regulation strategy improves pressure distribution uniformity by more than 6%, effectively enhancing curved-surface lay-up quality and the consolidation quality of advanced polymer composite components. This work provides an intelligent design-and-manufacturing route that links process simulation with real-time control for high-quality automated composite processing.

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Publication Details

Journal
Journal of Composites Science
Published
2026-09-29
DOI
https://doi.org/10.3390/jcs10100516
Primary Topic
Epoxy Resin Curing Processes
Type
article
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Compaction-Pressure Regulation for Automated Fiber Placement of Advanced Polymer Composites Based on Simulation Planning and Closed-Loop Control Compensation

Qinghua Song, Yuze Guo, Tiancheng Zhao, Jing Zhu et al.
Journal of Composites Science
Epoxy Resin Curing Processes
article

Compaction-Pressure Regulation for Automated Fiber Placement of Advanced Polymer Composites Based on Simulation Planning and Closed-Loop Control Compensation

Qinghua Song, Yuze Guo, Tiancheng Zhao, Jing Zhu, Liang Chang
article en

Abstract

Automated fibre placement (AFP) is a key process for manufacturing advanced polymer–matrix composite aerostructures; however, an uneven compaction-pressure distribution of tows during lay-up reduces the inter-laminar bonding strength and induces processing defects such as bridging and wrinkles. In this study, a pressure regulation strategy coordinating simulation-based feed-forward planning with closed-loop feedback control is proposed as a modified processing route for improving the manufacturing quality of polymer composites. The strategy adopts a two-layer “planning–execution” architecture. In the planning layer, process parameters and placement trajectories are optimized in advance based on a compaction-roller pressure simulation model and a compaction-uniformity index. In the execution layer, closed-loop pressure control suppresses on-site disturbances in real time to ensure that the simulation objectives are realized, thereby achieving uniform control of the compaction-pressure field. Finally, multi-angle lay-up experiments were carried out on a convex-surface mould, and the pressure field was measured using pressure-sensitive films. The results show that the proposed regulation strategy improves pressure distribution uniformity by more than 6%, effectively enhancing curved-surface lay-up quality and the consolidation quality of advanced polymer composite components. This work provides an intelligent design-and-manufacturing route that links process simulation with real-time control for high-quality automated composite processing.

Journal of Composites ScienceVol. 10(10)
Openalex Percentile: Top 21%
Epoxy Resin Curing Processes
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Compaction-Pressure Regulation for Automated Fiber Placement of Advanced Polymer Composites Based on Simulation Planning and Closed-Loop Control Compensation — Qinghua Song, Yuze Guo, et al. · Journal of Composites Science (2026) | TGRS Research Map | TGRS