DESIGN AND PRODUCTION OF A DEVICE FOR BASING AND FIXING CONIC DETAILS IN SINE BAR MEASUREMENTS
DOI:
https://doi.org/10.17770/etr2023vol3.7178Keywords:
design, fabrication, 3d printing, 3d modelling, device, measurement, operabilityAbstract
The geometric features of the conical parts measured by a sine bar requires special devices for basing and fastening. Basing and fixing conical parts on a sine bar is a problem that can lead to deviations in measurements. In the presented study, a fixture for fixing and basing conical details when measuring with a sine bar is designed and manufactured. The device is designed to facilitate the work of the operator in fixing the workpiece during the measurement, which increases the accuracy of the measurements. The developed structure is designed using SolidWorks. After the completion of the 3D model, a choice of material and technology for 3D printing is made. After that, a 3D printer is used for its production. The manufactured device is tested in laboratory studies. The designed device is installed on the sine bar without changing the measurement methodology. The conducted experiments prove its workability and applicability.
Downloads
References
Acko, B. (2005). Calibration of electronic levels using a special sine bar. Precision engineering, 29(1), 48-55.
Kan, P., & He, M. (2015, December). Analysis and calculation of dimension of gauge block in sine bar measuring taper angle. In 2015 Joint International Mechanical, Electronic and Information Technology Conference (JIMET-15) (pp. 725-729). Atlantis Press.
Дойчо Д. Димитров. Взаимозаменяемост, стандартизация и технически измервания- Четвърто издание, Издателство „ Техника“ София 1994.
Mike Ayre. 3D printing for manufacture: a basic design guide. Available on 20.06.22 at: https://www.crucibledesign.co.uk/images/uploaded/guides/3d-printing-for-manufacture-a-basic-design-guide-download-original.pdf.
Shahrubudin, N., Lee, T. C., & Ramlan, R. J. P. M. (2019). An overview on 3D printing technology: Technological, materials, and applications. Procedia Manufacturing, 35, 1286-1296.
Durgashyam, K., Reddy, M. I., Balakrishna, A., & Satyanarayana, K. (2019). Experimental investigation on mechanical properties of PETG material processed by fused deposition modeling method. Materials Today: Proceedings, 18, 2052-2059.
Valvez, S., Silva, A. P., & Reis, P. N. (2022). Optimization of Printing Parameters to Maximize the Mechanical Properties of 3D-Printed PETG-Based Parts. Polymers, 14(13), 2564.
Prusament PETG Technical data sheet, available at: https://www.prusa3d.com/product/prusament-petg-jet-black-2kg/, 20.03.2023.
Dudek, P. F. D. M. (2013). FDM 3D printing technology in manufacturing composite elements. Archives of metallurgy and materials, 58(4), 1415-1418.
https://www.3dsolid.eu/2019/09/25/procesi-v-3d-printirane/. Available on july 2021.