Factory simulation of adhesive bonding processes considering pot-life-induced waste
Journal of Advanced Joining Processes, vol. 13, pp. 100375
Abstract
The simulation of production systems in the planning phase is an established tool for evaluating system performance under dynamic conditions ( Da Silva et al., 2018 ). When planning a production system that includes time-critical processes such as adhesive bonding, exceeding time constraints (e.g., excessive lead times relative to the adhesive pot-life) can lead to product rejection and scrap. These risks should be analyzed by means of simulation, as it enables the consideration of stochastic effects such as random machine breakdowns, which significantly influence product lead times. This study focuses on the production of adhesively bonded electrolyzer-cells. Due to the cell design, several handling and stacking operations must be carried out between adhesive application and final joining, so that immediate joining is not feasible and pot-life-induced scrap becomes a critical risk factor. We therefore conducted an exploratory investigation that combines experimental pot-life characterization with discrete-event simulation of a planned electrolyzer-cell production system. A two-component epoxy adhesive was characterized using differential scanning calorimetry with kinetic analysis, rotational rheometry, and 90° peel tests on application-representative joints. Based on these tests, an application-specific pot-life was derived and implemented as a time-dependent quality criterion in the discrete-event simulation model. A full-factorial simulation study with varied buffer size and mean time to repair at a station availability of 98 % was carried out. The results demonstrated a pronounced trade-off between throughput and pot-life-induced waste and identified a buffer capacity of one and short repair times as the most favorable configuration. Extending pot-life due to different processing temperatures substantially reduced scrap, highlighting the benefit of integrating curing kinetics and dynamic simulation in early-stage production system design for time-critical adhesive processes.
Authors 6
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Affiliation as printed
ISF – Welding and Joining Institute, RWTH Aachen University, Pontstr. 49, 52062 Aachen, Germany
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Affiliation as printed
OTH Regensburg, Department of Mechanical Engineering, Galgenberstraße 30, 93053 Regensburg, Germany
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Affiliation as printed
ISF – Welding and Joining Institute, RWTH Aachen University, Pontstr. 49, 52062 Aachen, Germany
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Affiliation as printed
ISF – Welding and Joining Institute, RWTH Aachen University, Pontstr. 49, 52062 Aachen, Germany
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Affiliation as printed
ISF – Welding and Joining Institute, RWTH Aachen University, Pontstr. 49, 52062 Aachen, Germany
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Affiliation as printed
OTH Regensburg, Department of Mechanical Engineering, Galgenberstraße 30, 93053 Regensburg, Germany
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