Technological features of the heterogeneous plastics ultrasonic welding
Authors: Volkov S.S., Pankratov A.S., Remizov A.L., Konovalov A.V. | Published: 28.04.2023 |
Published in issue: #5(758)/2023 | |
Category: Mechanical Engineering and Machine Science | Chapter: Welding, Allied Processes and Technologies | |
Keywords: ultrasonic welding, heterogeneous plastics, oscillation frequency, waveguide oscillation amplitude, static welding pressure |
The paper considers technological features of heterogeneous plastics ultrasonic welding, which specificity is manifested in the volumetric interaction nature. Results of studying the mechanism of a welded joint formation showed that micro-volumes mixing, polymer molecules mutual diffusion in the contacting surfaces and emergence of the new chemical bonds with the block copolymers formation were the simultaneous processes. Their common feature was that all these processes proceeded in the temperature range corresponding to the polymer viscous-flow state. It was experimentally confirmed that one of the criteria for weldability of the heterogeneous plastics was their compatibility in terms of acoustic properties being estimated by the melt density and viscosity. Technological methods were proposed making it possible to compensate for differences in the welded materials acoustic properties, and thereby obtain the high-quality welded joints. Four stages of the welded joints formation mechanism were determined during ultrasonic welding of the heterogeneous plastics. It was established that physical and mechanical properties of the heterogeneous plastics were playing a decisive role in the mechanism of heat generation during the ultrasonic welding. An ultrasonic welding unit for welding the heterogeneous plastics in vacuum was developed.
References
[1] Kryzhanovskiy V.K., ed. Tekhnicheskie svoystva polimernykh materialov [Technical properties of polymeric materials]. Sankt-Petersburg, Professiya Publ., 2005. 235 p. (In Russ.).
[2] Lyushinskiy A.B. Diffuzionnaya svarka raznorodnykh materialov [Diffusion welding of dissimilar materials]. Moscow, Akademiya Publ., 2006. 208 p. (In Russ.).
[3] Komarov G.V. Sposoby soedineniy detaley iz plasticheskikh mass [Methods of connecting parts made of plastic masses]. Moscow, Khimiya Publ., 2007. 288 p. (In Russ.).
[4] Maslov B.G., Vybornov A.P. Proizvodstvo svarnykh konstruktsiy [Production of welded structures]. Moscow, Akademiya Publ., 2015. 288 p. (In Russ.).
[5] Volkov S.S. Svarka i skleivanie polimernykh materialov [Welding and bonding polymeric materials]. Moscow, Khimiya Publ., 2001. 376 p. (In Russ.).
[6] Volkov S.S. Ultrasonic butt-seam welding of rigid plastic. Svarochnoe proizvodstvo, 2011, no. 9, pp. 15–20. (In Russ.).
[7] Karkhin V.A. Teplovye protsessy pri svarke [Thermal processes in welding]. Sankt-Petersburg, Izd-vo Politekhnicheskogo univ-ta Publ., 2013. 646 p. (In Russ.).
[8] Volkov S.S., Shestel’ L.A., Sokolov V.A. Ultrasonic welding of polyamide sealing gaskets using infrared radiation. Weld. Int., 2016, vol. 30, no. 2, pp. 150–154, doi: https://doi.org/10.1080/09507116.2015.1036535
[9] Volkov S.S. Ultrasonic butt welding of rigid plastic. Weld. Int., 2013, vol. 27, no. 1, pp. 63–66, doi: https://doi.org/10.1080/09507116.2012.695155
[10] Volkov S.S. Main welding parameters of ultrasound contour welding of polyethylene vessels. Weld. Int., 2011, vol. 25, no. 11, pp. 898–902, doi: https://doi.org/10.1080/09507116.2011.581433
[11] Volkov S.S. Ultrasonic welding of brush elements. Weld. Int., 2012, vol. 26, no. 10, pp. 796–799, doi: https://doi.org/10.1080/09507116.2011.653164
[12] Volkov S.S. The effect of conditions of ultrasound welding on the fracture force of non-woven materials. Weld. Int., 2005, no. 19, no. 6, pp. 484–489, doi: https://doi.org/10.1533/wint.2005.3473
[13] Volkov S.S. Effect of dimensions of the gap between the edges on the strength of ultrasound welded joints in rigid plastics. Weld. Int., 2003, vol. 17, no. 6, pp. 482–486, doi: https://doi.org/10.1533/wint.2003.3154