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Towards Indirect Data-Driven Predictive Control for Heating Phase of Thermoforming Process

Published 24 Jul 2024 in eess.SY and cs.SY | (2407.17013v1)

Abstract: Shaping thermoplastic sheets into three-dimensional products is challenging since overheating results in failed manufactured parts and wasted material. To this end, we propose an indirect data-driven predictive control approach using Model Predictive Control (MPC) capable of handling temperature constraints and heating-power saturation while delivering enhanced precision, overshoot control, and settling times compared to state-of-the-art methods. We employ a Non-linear Auto-Regressive with Exogenous inputs (NARX) model to define a linear control-oriented model at each operating point. Using a high-fidelity simulator, several simulation studies have been conducted to evaluate the proposed method's robustness and performance under parametric uncertainty, indicating overshoot and average steady-state error less than 2<sup>∘</sup>C2<sup>\circ</sup> \mathrm{C} and 0.7<sup>∘</sup>C0.7<sup>\circ</sup> \mathrm{C} (7<sup>∘</sup>C7<sup>\circ</sup> \mathrm{C} and 2<sup>∘</sup>C2<sup>\circ</sup> \mathrm{C}) for the nominal (worst-case) scenario. Finally, we applied the proposed method to a lab-scale thermoforming platform, resulting in a close response to the simulation analysis with overshoot and average steady-state error metrics less than 5.3<sup>∘</sup>C5.3<sup>\circ</sup> \mathrm{C} and 1<sup>∘</sup>C1<sup>\circ</sup> \mathrm{C}, respectively.

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