Obrabotka Metallov 2026 Vol. 28 No. 2

OBRABOTKAMETALLOV Vol. 28 No. 2 2026 176 EQUIPMENT. INSTRUMENTS 19. Raoufi K., Sutherland J.W., Zhao F., Clarens A.F., Rickli J.L., Fan Z., Huang H., Wang Y., Lee W.J., Mathur N., Triebe M.J., Desabathina S.S., Haapala K.R. Current state and emerging trends in advanced manufacturing: process technologies. The International Journal of Advanced Manufacturing Technology, 2024, vol. 135, pp. 4089–4118. DOI: 10.1007/s00170-024-14782-3. 20. Ryzhikova T.N., Borovskii V.G. Issledovanie strategicheskikh perspektiv modernizatsii stankostroeniya [Exploring the strategic perspectives for machine tool industry modernization]. Ekonomicheskii analiz: teoriya i praktika = Economic Analysis: Theory and Practice, 2017, vol. 16 (5), pp. 835–850. DOI: 10.24891/ea.16.5.835. 21. Grzesik W. Hybrid additive and subtractive manufacturing processes and systems: a review. Journal of Machine Engineering, 2018, vol. 18 (4), pp. 5–24. DOI: 10.5604/01.3001.0012.7629. 22. Lauwers B., Klocke F., Klink A., Tekkaya A.E., Neugebauer R., McIntosh D. Hybrid processes in manufacturing. CIRP Annals, 2014, vol. 63 (2), pp. 561–583. DOI: 10.1016/j.cirp.2014.05.003. 23. Moriwaki T. Multi-functional machine tool. CIRP Annals, 2008, vol. 57 (2), pp. 736–749. DOI: 10.1016/j. cirp.2008.09.004. 24. Yamazaki T. Development of a hybrid multi-tasking machine tool: Integration of additive manufacturing technology with CNC machining. Procedia CIRP, 2016, vol. 42, pp. 81–86. DOI: 10.1016/j.procir.2016.02.193. 25. Skeeba V.Yu. Gibridnoe tekhnologicheskoe oborudovanie: povyshenie eff ektivnosti rannikh stadii proektirovaniya kompleksirovannykh metalloobrabatyvayushchikh stankov [Hybrid process equipment: improving the effi ciency of the integrated metalworking machines initial designing]. Obrabotka metallov (tekhnologiya, oborudovanie, instrumenty) = Metal Working and Material Science, 2019, vol. 21, no. 2, pp. 62– 83. DOI: 10.17212/1994-6309-2019-21.2-62-83. 26. Grzesik W., Ruszaj A. Hybrid manufacturing processes: Physical fundamentals, modelling and rational applications. Cham, Springer, 2021. 234 p. ISBN 978-3-030-77106-5. DOI: 10.1007/978-3-030-77107-2. 27. SkeebaV.Yu., IvancivskyV.V. Povyshenie eff ektivnosti poverkhnostno-termicheskogo uprochneniya detalei mashin v usloviyakh sovmeshcheniya obrabatyvayushchikh tekhnologii, integriruemykh na edinoi stanochnoi baze [Improving the effi ciency of surface-thermal hardening of machine parts in conditions of combination of processing technologies, integrated on a single machine tool base]. Obrabotka metallov (tekhnologiya, oborudovanie, instrumenty) = Metal Working and Material Science, 2021, vol. 23, no. 3, pp. 45–71. DOI: 10.17212/1994-63092021-23.3-45-71. 28. Brecher C., Özdemir D. Integrative production technology: Theory and applications. Cham, Springer International Publishing, 2017. 1100 p. ISBN 978-3-319-47451-9. DOI: 10.1007/978-3-319-47452-6. 29. Mitsuishi M., Ueda K., Kimura F. Manufacturing systems and technologies for the new frontier. London, Springer-Verlag, 2008. 556 p. DOI: 10.1007/978-1-84800-267-8. 30. Pirozhkov V.E. [Analysis of titanium balloon blank material storage systems. Designing an automated sheet material storage area]. Kompleksnaya avtomatizatsiya proektirovaniya i proizvodstva (KAPP(M)-2025) [Integrated Automation of Design and Manufacturing (IADM(Y)-2025)]. Proceedings of the III Youth Conference (with international participation). Moscow, 2025, pp. 176–185. (In Russian). 31. Matveev S.S. [Automation of the waterjet cutting module for titanium sheet blanks used in the production of sphere-tanks]. Kompleksnaya avtomatizatsiya proektirovaniya i proizvodstva (KAPP(M)-2025) [Integrated Automation of Design and Manufacturing (IADM(Y)-2025)]. Proceedings of the III Youth Conference (with international participation). Moscow, 2025, pp. 145–150. (In Russian). 32. Morozov A.A., Zhargalova A.D. [Improvement of the production system for manufacturing sphere-balloon hemispheres from titanium sheets]. Russkii inzhener [Russian Engineer]. Abstracts of the III All-Russian Congress with International Participation. Moscow, 2025, pp. 127–128. (In Russian). 33. Vlasov V.V. [A robotic module for control operations for the production of rocket and space technology products]. Kompleksnaya avtomatizatsiya proektirovaniya i proizvodstva (KAPP(M)-2025) [IntegratedAutomation of Design and Manufacturing (IADM(Y)-2025)]. Proceedings of the III Youth Conference (with international participation). Moscow, 2025, pp. 114–118. (In Russian). 34. Altintas Y., Kersting P., Biermann D., Budak E., Denkena B., Lazoglu I. Virtual process systems for part machining operations. CIRP Annals, 2014, vol. 63 (2), pp. 585–605. DOI: 10.1016/j.cirp.2014.05.007. 35. KoloskovaA.V., Kiselev I.A., Ivanov I.I. Modelirovanie dinamiki protsessa tocheniya s uchetompodatlivosti obrabatyvaemoi detali [Modeling of the turning process dynamics, taking into the account the compliance of the workpiece]. Internet-zhurnal «Naukovedenie» = Online Journal «Naukovedenie», 2017, vol. 9, no. 2, p. 70.

RkJQdWJsaXNoZXIy MTk0ODM1