Martin H.M. Maruyama, Lucas Leal Agne, Maximiliano Silveira de Souza, Anderson Lima dos Santos, José Humberto S. Almeida, Sandro Campos Amico, Maikson L.P. Tonatto
Type IV composite overwrapped pressure vessels (COPVs) are commonly used for hydrogen and CNG storage. However, thin-walled compressed-air reservoirs for heavy-vehicle braking systems remain underexplored and highly sensitive to winding-angle and thickness variations. This study presents an experimentally validated, manufacturing-consistent numerical framework integrating analytical laminate screening, layer-by-layer layup generation, and progressive damage finite element modelling. Hydrostatic burst tests on carbon- and glass-fibre prototypes are used to validate predictions of mass, burst pressure, and failure location. The framework achieves mass prediction errors below 1.4% and accurately captures failure locations, with burst pressure predictions within 1% for medium- and low-angle configurations and conservatively underestimates for higher angles. Sensitivity analysis identifies ply activation as the dominant driver of mass and a key contributor to burst-pressure variability, while outer plies govern stiffness and strength. The results further demonstrate that winding angle controls damage location and failure evolution, highlighting the importance of layer-wise modelling. The proposed approach provides a reliable and physically consistent tool for the design and optimisation of lightweight COPVs for heavy-vehicle applications.