Modeling the life cycle reduction for the rapid development of UAVs for use in military missions
Abstract
Keywords
Full Text:
PDFReferences
Gorbulin, V. P., & Mosov, S. P. Tendentsiyi dronenizatsiyi v Ukrayini na suchasnomu etapi [Current trends in droneization in Ukraine]. Visnyk Natsionalʹnoyi akademiyi nauk Ukrayiny – Visnyk of the National Academy of Sciences of Ukraine, 2024, no. 12, pp. 40-48. DOI: 10.15407/visn2024.12.040. (In Ukrainian).
Semenenko, O., Lipskyi, A., Hetman, A., Reznik, V., Herasymenko, O., & Tarasov, R. Osnovni teoretychni aspekty vyznachennya kryteriyiv viysʹkovo-ekonomichnoyi efektyvnosti v zadachakh obgruntuvannya vyboru ratsionalʹnykh variantiv skladnykh zrazkiv ozbroyennya ta viysʹkovoyi tekhniky [The main theoretical aspects of determining the criteria of military and economic efficiency in the tasks of justifying the choice of rational options for complex types of weapons and military equipment]. Social Development and Security, 2023, vol. 13, no. 2, pp. 171-184. DOI: 10.33445/sds.2023.13.2.15. (In Ukrainian).
Sokulsky, O., Chumakevych, V., & Topolskov, Ye. Stan rozroblennya ta perehlyadu standartiv systemy upravlinnya zhyttyevym tsyklom ozbroyennya ta viysʹkovoyi tekhniky [Statuse of development and review of standards for the lifecycle management system of weapons and military equipment]. Problemy stvorennya, testuvannya, zastosuvannya ta ekspluatatsiyi skladnykh informatsiynykh system – Problems of construction, testing, application and operation of complex information systems, 2025, no. 1(28), pp. 160-176. DOI: 10.46972/2076-1546.2025.28.14. (In Ukrainian).
Setiawan, B., Wardhana, E., Alamie, N. & Parianom, R. Life Cycle Cost Calculation Model Main Tools of the Weapon System Indonesian National Army. Journal of Lifestyle and SDGs Review, 2025, no. 5(3), article no. 3872. DOI: 10.47172/2965-730X.SDGsReview.v5.n03.pe03872.
Moro, N. Life cycle of a Military Product. Scientific Bulletin-Nicolae Balcescu Land Forces Academy, 2018, vol. 23, no. 2, pp. 103-111. Available at: https://www.armyacademy.ro/buletin/bul2_2018/Moro.pdf (accessed September 04, 2025).
Zikos, Th., Karadimas, N. V., Tsigkas, A., & Sidiropoulou, K. Weapons’ life cycle cost: the key of success in logistics. WSEAS Transactions on Business and Economics, 2022, no. 19, pp. 1036-1045. DOI: 10.37394/23207.2022.19.91.
Fedorovich, O., Uruskiy, O., Pronchakov, Y., & Lukhanin, M. Method and information technology to research the component architecture of products to justify investments of high-tech enterprise. Radioelectronic and Computer Systems, 2021, no. 1, pp. 150-157. DOI: 10.32620/reks.2021.1.13.
Markard, J. The life cycle of technological innovation systems. Technological Forecasting and Social Change, 2020, vol. 153, article no. 119407. DOI: 10.1016/j.techfore.2018.07.045.
Zamelek, P. Prospects for the application of systems engineering in the military equipment acquisition process. Rocznik Bezpieczeństwa Morskiego, 2024, no. 18, pp. 725-753. DOI: 10.5604/01.3001.0054.8311.
Artushyn, L., Kononov, O., & Yerko, V. Vyznachennya rezulʹtuyuchoyi mnozhyny variantiv pry bahatokryteriynomu vybori skladu bortovoho obladnannya boyovykh litakiv dlya yikh modernizatsiyi [Determination of the resulting set of options at the multi-criteria selection of the on-board equipment of combat aircraft for their modernization]. Zbirnyk naukovykh pratsʹ Derzhavnoho naukovo-doslidnoho instytutu aviatsiyi – Collection of scientific works State Research Institute of Aviation, 2021, no. 17 (24), pp. 20-26. DOI: 10.54858/dndia.2021-17-3. (In Ukrainian).
Sanchez-Lopez, J. L., Pestana, J., de la Puente, P., & Campoy P. A Reliable Open-Source System Architecture for the Fast Designing and Prototyping of Autonomous Multi-UAV Systems: Simulation and Experimentation. Journal of Intelligent & Robotic Systems, 2016, no. 84, pp. 779-797. DOI: 10.1007/s10846-015-0288-x.
Chertkov, O. Yu., Shumak, L., & Rasputnyi, D. Analiz faktoriv vplyvu na efektyvnistʹ proektnykh rishenʹ [Analysis of factors influence on the efficiency of design solutions]. Shlyakhy pidvyshchennya efektyvnosti budivnytstva – Ways to improve construction efficiency, 2024, no. 2(53), pp. 123-141. DOI: 10.32347/2707-501x.2024.53(2).123-141. (In Ukrainian).
Shpakov, A. V., Shcherban, B. M., Tsymbalisty, Y. V., Gergi, M. S., & Katsyuba, I. R. Naukovo-analitychni komponenty otsinky ta vybir alʹternatyvnykh variantiv vprovadzhennya developersʹkoho proektu na peredinvestytsiyno-pidhotovchu fazu tsyklu [Scientific-analytical components of assessment and selection of alternative options for implementing a development project in the pre-investment and preparatory phase of the cycle]. Shlyakhy pidvyshchennya efektyvnosti budivnytstva – Ways to improve construction efficiency, 2023, no. 2(52), pp. 325-344. DOI: 10.32347/2707-501x.2023.52(2).325-344. (In Ukrainian).
Wang, C. N., Nguyen, N. A. T., Dang, T. T., & Lu, C. M. A Compromised Decision-Making Approach to Third-Party Logistics Selection in Sustainable Supply Chain Using Fuzzy AHP and Fuzzy VIKOR Methods. Mathematics, 2021, vol. 9, no. 8, article no. 886. DOI: 10.3390/math9080886.
Wanke, P., Tan, Y., Antunes, J., & Emrouznejad, A. Foreign direct investment performance drivers at the country level: a robust compromise multi-criteria decision-making approach. Technological and Economic Development of Economy, 2024, no. 30(1), pp. 148-174. DOI: 10.3846/tede.2024.19532.
Renic, M., & Christensen, A. Air Power by Small, Low-Cost Drones: Implications for Future Warfare. Shift Paradigm. The Air Power Journal, Fourth Edition, 2024. Available at: https://theairpowerjournal.com/air-power-by-small-low-cost-drones-implications-for-future-warfare/ (accessed November 09, 2025).
Adeleke, A. K., Montero, D. J. P., Lottu, O. A., Ninduwezuor-Ehiobu, N., & Ani, E. C. 3D printing in aerospace and defense: A review of technological breakthroughs and applications. World Journal of Advanced Research and Reviews, 2024, vol. 21, no. 2, pp. 1149-1160. DOI: 10.30574/wjarr.2024.21.2.0558.
Zasjadko, A., Lytovchenko, V., Raksha, V., Shvets, S., & Yula O. Modelʹ testuvannya viysʹkovoyi tekhniky na osnovi hranychnykh znachenʹ [Model for testing military equipment based on extreme values]. Vyprobuvannya ta sertyfikatsiya – Testing and certification, 2025, no. 1(7), pp. 15-21. DOI: 10.37701/ts.07.2025.02. (In Ukrainian).
Tolok, I., Pampukha, I. V., Karpenko, A. O., Tolstanova, G. M., Lushchyk, S. V., Loza, V. M., & Dobrovolsky, V. B. Avtomatyzovanyy kompleks pryynyattya rishenʹ pro hotovnistʹ do zastosuvannya tekhnolohiy i zrazkiv vyznachennya vyhotovlennya ozbroyennya ta viysʹkovoyi tekhniky [Automated decision-making complex for determining the readiness for application of technologies and samples for the production of weapons and military equipment]. Patent for utility model, no. 146818, 2021. Available at: http://repositsc.nuczu.edu.ua/handle/123456789/22162 (accessed November 19, 2025).
Balushok, K. Dosvid stvorennya ta vprovadzhennya intehrovanoyi systemy tekhnolohichnoyi pidhotovky vyrobnytstva novykh aviatsiynykh dvyhuniv [Experience of designing and implementing integrated system of technological preparation of production for manufacturing new aircraft engines]. Mechanics and Advanced Technologies, 2023, no. 1(97), pp. 24-35. DOI: 10.20535/2521-1943.2023.7.1.278104. (In Ukrainian).
Topal, A. V., Sergienko, O. A., & Vysloukh, S. P. Vyrishennya zadach tekhnolohichnoyi pidhotovky vyrobnytstva shtuchnykh neyronnykh merezh [Solving problems of technological preparation of production by means of artificial neural networks]. Visnyk Chernihivsʹkoho derzhavnoho tekhnolohichnoho universytetu. Seriya : Tekhnichni nauky – Bulletin of the Chernihiv State Technological University. Series: Technical Sciences, 2015, no. 2, pp. 171-175. Available at: http://nbuv.gov.ua/UJRN/Vcndtn_2015_2_30 (accessed November 21, 2025). (In Ukrainian).
Pronchakov, Yu. Modelyuvannya roztashuvannya virtualʹnoho rozpodilenoho vyrobnytstva v umovakh obmezhenykh mozhlyvostey rozvytku pidpryyemstva [Simulation of virtual distributed production location under conditions of limited possibilities of enterprise development]. Visnyk Natsionalʹnoho tekhnichnoho universytetu "KHPI". Ser.: Systemnyy analiz, upravlinnya ta informatsiyni tekhnolohiyi – Bulletin of the National Technical University "KhPI". Series: System Analysis, Control and Information Technologies, 2021, no. 1(5), pp. 47-51. DOI: 10.20998/2079-0023.2021.01.07. (In Ukrainian).
Li, C., Chang, Q., Xiao, G. & Arinez, J. Integrated Process-System Modeling and Performance Analysis for Serial Production Lines, IEEE Robotics and Automation Letters, July 2022, vol. 7, no. 3, pp. 7431-7438. DOI: 10.1109/LRA.2022.3181741.
Fedorovych, O., Slomchynskyi, O., Yelizieva, A., Smidovych, L., & Yashina, E. Modeli doslidzhennya stiykosti vysokotekhnolohichnykh vyrobnytstv v suchasnykh polityko-ekonomichnykh umovakh [Models for studying the stability of high-tech productions in modern political and economic conditions]. Aviatsiyno-kosmichna tekhnika i tekhnolohiya – Aerospace Technic and Technology, 2023, no. 4, pp. 92-100. DOI: 10.32620/aktt.2023.4.12. (In Ukrainian).
Mavrenkov, O., Kubar, S., & Ulizko, V. Analiz ryzykiv, shcho zabezpechuyutʹ realizatsiyu proektiv postachannya zrazkiv ozbroyennya ta viysʹkovoyi tekhniky v umovakh voyennoho stanu [Analysis of the risks accompanying the implementation of projects for the supply of weapons and military technique samples under the conditions during of war]. Zbirnyk naukovykh pratsʹ Derzhavnoho naukovo-doslidnoho instytutu aviatsiyi – Collection of scientific works State Research Institute of Aviation, 2023, no. 19(26), pp. 26-34.DOI: 10.54858/dndia.2023-19-3.(In Ukrainian).
DOI: https://doi.org/10.32620/aktt.2026.1.09
