Formalization of the Structural Synthesis of Technical Systems at the Initial Stage of Design

A. V. Zaboleeva-Zotova1,2, A. B. Petrovsky3,4,1
1Volgograd State Technical University, Volgograd, Russia
2Russian Center for Scientific Information, Moscow, Russia
3Shukhov Belgorod State Technological University, Belgorod, Russia
4Federal Research Center “Computer Science and Control,” Russian Academy of Sciences, Moscow, Russia

Tóm tắt

This paper considers the means for conceptual design of complex technical systems. A quasi-axiomatic theory was constructed that formalizes the procedures of generating meaning for a natural language description of the process of creating a new technical solution. Semantic categories, structures of universal sets, and operations for comparing elements of the universe are introduced. The types of connection of elementary subsystems are described. A formalization of the procedure for multilevel synthesis of a technical system using a generative grammar over fuzzy structures is proposed. An example of the design of a technical device is given.

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Tài liệu tham khảo

Rodenacker, W.G., Methodisches Konstruieren: Grundlagen, Methodik, praktische Beispiele, Konstruktionsbücher, vol. 27, Berlin: Springer, 1991. https://doi.org/10.1007/978-3-642-87484-0 Roth, K., Konstruieren mit Konstruktionskatalogen, Berlin: Springer, 1994, 2nd ed. https://doi.org/10.1007/978-3-662-08150-1 Koller, R., Konstruktionslehre für den Maschinenbau: Grundlagen zur Neu- und Weiterentwicklung technischer Produkte mit Beispielen, Berlin: Springer, 1998. https://doi.org/10.1007/978-3-642-80417-5 Marca, D.A. and McGowan, C.L., Structured Analysis and Design Technique, New York: McGraw-Hill, 1987. Hubka, V. and Eder, W.E., Design Science: Introduction to the Needs, Scope and Organization of Engineering Design Knowledge, London: Springer, 1996. https://doi.org/10.1007/978-1-4471-3091-8 Suh, N.P., Axiomatic Design: Advances and Applications, Oxford: Oxford Univ. Press, 2001. Pahl, G., Beitz, W., Feldhusen, J., and Grote, K.-H., Engineering Design: A Systematic Approach, London: Springer, 2007. https://doi.org/10.1007/978-1-84628-319-2 Eder, W.E. and Hosnedl, S., Design Engineering: A Manual for Enhanced Creativity, Boca Raton, Fla.: CRC Press, 2007. https://doi.org/10.1201/9781420047660 Al’tshuller, G.S., Naiti ideyu. Vvedenie v TRIZ - teoriyu resheniya izobretatel’skikh zadach (Find the Idea: Introduction to the Theory of Resolving Inventor’s Problems), Moscow: Al’pina Pablisher, 2011. Ankudinov, G.I., Sintez struktury slozhnykh ob’’ektov (logiko-kombinatornyi podkhod) (Synthesis of the Structure of Complex Objects (Logic-Combinatorial Approach)), Leningrad: Leningrad. Gos. Univ., 1986. Polovinkin, A.I., Osnovy inzhenernogo tvorchestva (Foundations of Engineering Creativity), Moscow: Mashinostroenie, 1988. Kontseptual’noe proektirovanie. Razvitie i sovershenstvovanie metodov (Conceptual Design: Development and Improvement of Methods), Kamaev, V.A., Ed., Moscow: Mashinostroenie, 2005. Zaboleeva-Zotova, A.V., Lingvisticheskie sistemy. Modeli, metody, prilozheniya (Linguistic Systems: Models, Methods, and Applications), Volgograd: Volgograd. Gos. Tekh. Univ., 2004. Zaboleeva-Zotova, A.V., Formalization of text semantics at automation of ill-structurable procedures in the process of engineering systems synthesis, Izv. Volgograd. Gos. Tekh. Univ., 2006, no. 4, pp. 36–43. Vaingol’ts, I.I. and Fomenkov, S.A., Development of the architecture of software-information complex using structured physical knowledge for designing engineering systems, Mekhatronika, Avtom. Robototekhnika, 2019, no. 3, pp. 73–76. https://doi.org/10.26160/2541-8637-2019-3-73-76 Vasil’ev, S.S., Korobkin, D.M., and Fomenkov, S.A., Method for extracting the structural elements of inventions from Russian-language patents, Mat. Metody Tekhnike Tekhnol.kh, 2019, vol. 7, pp. 105–110. Yakovlev, A.A., Postupaeva, S.G., Grebennikov, V.N., and Fedorova, N.V., Development of technical systems based on heuristic modeling of the physical operation principle, Izvestia Volgograd. Gos. Tekh. Univ., 2020, no. 8, pp. 83–86. https://doi.org/10.35211/1990-5297-2020-8-243-83-86 Orlovskii, S.A., Problemy prinyatiya reshenii pri nechetkoi iskhodnoi informatsii (Problems of Decision Making at Fuzzy Initial Information), Moscow: Nauka, 1981. Zimmerman, H.J., Zadeh, L.A., and Gaines, B.R., Fuzzy Sets and Decision Analysis, Amsterdam: North-Holland, 1984. Petrovsky, A.B., Teoriya prinyatiya reshenii (Theory of Decision Making), Moscow: Akademiya, 2009. Petrovsky, A.B., Gruppovoi verbal’nyi analiz reshenii (Group Verbal Decision Analysis), Moscow: Nauka, 2019. Kobrinskii, A.E. and Kobrinskii, A.A., Vibroudarnye sistemy (dinamika i ustoichivost’) (Vibroimpact Systems: Dynamics and Stability), Moscow: Nauka, 1973. Vibratsiya v tekhnike. Spravochnik (Vibrations in Engineering), vol. 1: Kolebaniya lineinykh sistem (Oscillations of Linear Systems), Moscow: Mashinostroenie, 1978. Vibratsiya v tekhnike. Spravochnik (Vibrations in Engineering), vol. 4: Vibratsionnye protsessy i mashiny (Vibration Processes and Machines), Moscow: Mashinostroenie, 1981.