Affiliation:
1. Consiglio Nazionale delle Ricerche (CNR), Institute of Intelligent Industrial Technologies and Systems for Advanced Manufacturing (STIIMA), Via P. Lembo, 38F, 70124 Bari, Italy
2. Consiglio Nazionale delle Ricerche (CNR), Institute of Intelligent Industrial Technologies and Systems for Advanced Manufacturing (STIIMA), Via A. Corti, 12, 20133 Milano, Italy
Abstract
In this paper, we present an experimental procedure to enhance the dimensional accuracy of fabrication via stereolithography (SLA) of features at the sub-mm scale. Deviations in sub-mm hemispherical cavity diameters were detected and measured on customized samples by confocal microscopy. The characterization and experimental observations of samples allowed the identification of inaccuracy sources, mainly due to the laser beam scanning strategy and the incomplete removal of uncured liquid resin in post-processing (i.e., IPA washing). As a technology baseline, the measured dimensional errors on cavity diameters were up to −46%. A compensation method was defined and implemented, resulting in relevant improvements in dimensional accuracy. However, measurements on sub-mm cavities having different sizes revealed that a constant compensation parameter (i.e., C = 85, 96, 120 μm) is not fully effective at the sub-mm scale, where average errors remain at −24%, −18.8%, and −16% for compensations equal to 85, 96 and 120 μm, respectively. A further experimental campaign allowed the identification of an effective nonlinear compensation law where the compensation parameter depends on the sub-mm feature size C = f(D). Results show a sharp improvement in dimensional accuracy on sub-mm cavity fabrication, with errors consistently below +8.2%. The proposed method can be extended for the fabrication of any sub-mm features without restrictions on the specific technology implementation.
Funder
European Union
Made in Italy Circular and Sustainable
Reference26 articles.
1. Kafle, A., Luis, E., Silwal, R., Pan, H.M., Shrestha, P.L., and Bastola, A.K. (2021). 3D/4D Printing of polymers: Fused deposition modelling (FDM), selective laser sintering (SLS), and stereolithography (SLA). Polymers, 13.
2. Bártolo, P.J. (2011). Stereolithography: Materials, Processes and Applications, Springer Science & Business Media.
3. The recent development of vat photopolymerization: A review;Zhang;Addit. Manuf.,2021
4. Netti, P. (2014). Biomedical Foams for Tissue Engineering Applications, Woodhead publishing.
5. Software compensation to improve the Stereolithography fabrication of porous features and porous surface texturing at micro-scale;Basile;Procedia Comput. Sci.,2024