Large-scale thermoplastic 3D printing is an emerging technology that enables cheaper and faster real-scale prototyping and rapid tooling. However, it still presents limitations that can lead to deformations in printed parts due to inadequate cooling conditions during the process. This study proposes COLD: a control and optimization of layer deposition system, based on temperature monitoring, to prevent print failures caused by excessive heat accumulation resulting from insufficient layer cooling time. A thermal camera was attached to a robotic printing system, and, after each layer is deposited, the average temperature of the regions where the next layer will be deposited is evaluated until it reaches a defined threshold. Conical thin wall parts were printed with and without COLD using Polypropylene 30% Glass Fiber, and the results show that it can contribute significantly to the success of large-scale additive manufacturing. • Real-time thermal feedback controls layer deposition in large-scale printing. • COLD prevents heat-induced failures by adjusting pauses between layers. • Dynamic cooling control improves reliability over fixed waiting-time methods. • COLD ensures stable geometry and avoids collapse in critical thin-wall prints.
Martins et al. (Tue,) studied this question.