MONITORING PEI PRODUCTION PARAMETERS ON A CUSTOM-MADE 3D PRINTER: AN INSIGHT INTO PHYSICAL AND MECHANICAL PROPERTIES
Affiliation:
1. İSTANBUL TEKNİK ÜNİVERSİTESİ, HAVACILIK ENSTİTÜSÜ, HAVA ARACI YAPILARI VE MALZEMELERİ ANABİLİM DALI (DİSİPLİNLERARASI)
Abstract
This study investigates the impact of production parameters on the quality of 3D-printed polyetherimide (PEI) samples using a custom-made 3D printer. In contrast to traditional optimization approaches, this research emphasizes the variability of outcomes despite maintaining fixed parameters such as nozzle and bed temperatures and slicer options. The study involves real-time monitoring of factors including nozzle, bed, and chamber temperatures, as well as relative humidity during the production process. Each layer was photographed individually to analyze its impact on the final product. Detailed physical and mechanical analyses revealed significant deviations in dimensions and flexural modulus, with a 10% loss in density and nearly 25% loss in flexural modulus in lower-performing samples compared to the best results. Results show correlations between critical parameters and product quality, underscoring the necessity for proper preparation and precise control. Furthermore, the research proposes a new method to geometrically represent the manufacturing process in a time-independent way using collected sensor data in 3D printing. This approach provides valuable insights for future studies aimed at optimizing additive manufacturing processes and enhancing the application of high-performance thermoplastics in high-tech fields such as aerospace and defense industries.
Publisher
International Journal of 3D Printing Technologies and Digital Industry
Reference24 articles.
1. 1. Gao, W., Zhang, Y., Ramanujan, D., Ramani, K., Chen, Y., Williams, C. B., Zavattieri, P. D., “The status, challenges, and future of additive manufacturing in engineering”, Computer-Aided Design, Vol. 69, Issue 1, Pages 65-89, 2015. 2. 2. Baumers, M., Dickens, P., Tuck, C., Hague, R., “The cost of additive manufacturing: machine productivity, economies of scale and technology-push”, Technological Forecasting and Social Change, Vol. 102, Issue 1, Pages 193-201, 2016. 3. 3. Ford, S., Despeisse, M., “Additive manufacturing and sustainability: an exploratory study of the advantages and challenges”, Journal of Cleaner Production, Vol. 137, Issue 1, Pages 1573-1587, 2016.
4. Vakharia, V. S., Leonard, H., Singh, M., Halbig, M. C., “Multi-Material Additive Manufacturing of High Temperature Polyetherimide (PEI)–Based Polymer Systems for Lightweight Aerospace Applications”, Polymers, Vol. 15, Issue 3, Pages 561, 2023. 4. 5. Kaynan, O., Yıldız, A., Bozkurt, Y.E., Yenigun, E.O., Cebeci, H., “Electrically conductive high-performance thermoplastic filaments for fused filament fabrication”, Composite Structures, Vol. 237, Issue 1, Pages 111930, 2020. 5. 6. Bozkurt, Y.E., Emanetoğlu, U., Yıldız, A., Türkarslan, Ö., Şaşal, F.N., Cebeci, H., “3D printable CNTs and BN hybridized PEEK composites for thermal management applications”, Journal of Materials Science, Vol. 58, Issue 38, Pages 15086-15099, 2023.
|
|