doi: 10.17586/2226-1494-2021-21-6-969-976


The method of forming and using a digital passport for an electronic product at enterprises of the instrument-making industry

J. V. Donetskaya


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Article in Russian

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Donetskaya Ju.V. The method of forming and using a digital passport for an electronic product at enterprises of the instrument-making industry. Scientific and Technical Journal of Information Technologies, Mechanics and Optics, 2021, vol. 21, no. 6, pp. 969–976 (in Russian). doi: 10.17586/2226-1494-2021-21-6-969-976


Abstract
The integration of automated systems in enterprises provides information support for the stages of the product life cycle and electronic interaction between employees in performing their work. Typically, this integration is carried out on a specific enterprise and is based on an ontological approach. This generates many similar results in the form of digital product passports. The proposed work is aimed at implementing a new approach to the integration of automated systems. It is based on the formulation of generalized design and production procedures and types of product data generated through control systems. The sequence of these procedures determines the activities of the enterprise at the stages of the life cycle. This results in an ontological model of a product for the instrument-making industry. The application of the model at each specific enterprise is possible if the requirements for the content of the passport and design solutions are provided verbally. The proposed method is implemented in several stages. At the first stage, the elements of the basic ontology are marked up. The content of its elements depends on the problem that is being solved. At the same time, ontology elements are formed that determine the content of a digital passport or a generated design solution. This is due to the automation of the management dealing with design and production procedures, and product data, which are considered appropriate in a particular enterprise. Consequently, design solutions based on a digital passport must be generated considering the requirements of specific enterprises. To form the content of a digital passport of an enterprise, subontology is extracted from the basic ontology at the second stage. At the final stage, subontology is extracted to generate the desired design solution. The study proposes the sequences of actions to mark up the basic ontology, as well as to extract subontology to form the content of a digital passport or generate a design solution. The described solution can be implemented at enterprises of the instrument-making industry, which include automated design systems. The presented method allows the development of signatures and semantics of unified services for the use of a digital passport.

Keywords: information support, life cycle, digital passport, design solution

References
  1. Churilin S.V., Khaimovich I.N. Basic conceptual model of data of design and technological preparation of production in the unified information space of the enterprise. Izvestia of Samara Scientific Center of the Russian Academy of Sciences, 2020, vol. 22, no. 4, pp. 57–63. (in Russian). https://doi.org/10.37313/1990-5378-2020-22-4-57-63
  2. Yanchenko A.Yu. Information support for effective maintenance and repair of ship equipment. Azimuth of scientific research: economics and administration, 2020, vol. 9, no. 3(32), pp. 413–416. (in Russian). https://doi.org/10.26140/anie-2020-0903-0099
  3. Korolenko V.V., Gribanov V.V., Doroshenko A.B. Informational basis for logistic support analysis for aircraft. Aerospace forces. Theory and Practice, 2018, no. 6, pp. 83–93. (in Russian)
  4. Okhtilev P.A. Intellectual complex for automated design of information and analytical systems support of complex objects life cycle. Journal of Instrument Engineering, 2018, vol. 61, no. 11, pp. 963–971. (in Russian). https://doi.org/10.17586/0021-3454-2018-61-11-963-971
  5. Afanasiev V. B. Ontological design of an automated information system for supporting the quality of products of the enterprise. Izvestiya Tula State University, 2020, no. 10, pp. 12–22. (in Russian)
  6. Okhtilev M.Yu., Gamov V.Yu., Chernikov A.D. Establishing a single virtual electronic passport of a space-socket-mounter "Soyuz-2": stages, concept and principles of construction, model of the electronic structure of the product. I-methods, 2018, vol. 10, no. 4, pp. 11–23. (in Russian)
  7. Okhtilev M.Yu., Klyucharev A.A., Okhtilev P.A., Zyanchurin A.E. Technology of automated information and analytical support of the product life cycle on the example of unified virtual electronic passport of space facilities. Journal of Instrument Engineering,2020, vol. 63, no. 11, pp. 1012–1019. (in Russian). https://doi.org/10.17586/0021-3454-2020-63-11-1012-1019
  8. Podovano A., Longo F., Nicoletti L., Mirabelli G. A digital twin based service oriented application for a 4.0 knowledge navigation in the smart factory. IFAC-PapersOnLine, 2018, vol. 51, no. 11, pp. 631–636. https://doi.org/10.1016/j.ifacol.2018.08.389
  9. Tao F., Cheng J., Qi Q., Zhang M., Zhang H., Sui F. Digital twin-driven product design, manufacturing and service with big data. International Journal of Advanced Manufacturing Technology, 2018, vol. 94, no. 9-12, pp. 3563–3576. https://doi.org/10.1007/s00170-017-0233-1
  10. Uhlemann T.H.-J., Lehmann Ch., Steinhilper R. The digital twin: realizing the cyber-physical production system for Industry 4.0. Procedia CIRP, 2017, vol. 61, pp. 335–340. https://doi.org/10.1016/j.procir.2016.11.152
  11. Lee J., Bagheri B., Kao H.-A. A cyber-physical systems architecture for Industry 4.0-based manufacturing systems. Manufacturing Letters, 2015, vol. 3, pp. 18–23. https://doi.org/10.1016/j.mfglet.2014.12.001
  12. Stark R., Kind S., Neumeyer S. Innovations in digital modelling for next generation manufacturing system design. CIRP Annals-Manufacturing Technology, 2017, vol. 66, no. 1, pp. 169–172. https://doi.org/10.1016/j.cirp.2017.04.045
  13. Donetskaya Ju.V., Gatchin Yu.A. Development of requirements for the content of a digital passport and design solutions. Journal of Physics: Conference Series, 2021, vol. 1828, no. 1, pp. 012102. https://doi.org/10.1088/1742-6596/1828/1/012102
  14. Flahive A., Taniar D., Rahayu W., Apduhan B.O. Ontology tailoring in the Semantic Grid. Computer Standards & Interfaces, 2009, vol. 31, no. 5, pp. 870–885. https://doi.org/10.1016/j.csi.2008.03.016
  15. Flahive A., Taniar D., Rahayu W. Ontology as a Service (OaaS): extracting and replacing sub-ontologies on the cloud. Cluster Computing, 2013, vol. 16, no. 4, pp. 947–960. https://doi.org/10.1007/s10586-012-0231-x
  16. Flahive A., Taniar D., Rahayu W., Apduhan B.O. A methology for ontology update in the semantic grid environment. Concurrency and Computation: Practice and Experience, 2015, vol. 27, no. 4, pp. 782–808. https://doi.org/10.1002/cpe.2841
  17. Flahive A., Taniar D., Rahayu W., Apduhan B.O. Ontology expansion: appending with extracted sub-ontology. Logic Journal of the IGPL, 2011, vol. 19, no. 5, pp. 618–647. https://doi.org/10.1093/jigpal/jzq016
  18. Flahive A., Taniar D., Rahayu W. Ontology as a Service (OaaS): a case for sub-ontology merging on the cloud. Journal of Supercomputing, 2013, vol. 65, no. 1, pp. 185–216. https://doi.org/10.1007/s11227-011-0711-4
  19. Anokhin A.N. Expert Assessment Methods. Tutorial. Obninsk, IATE, 1996, 148 p. (in Russian)
  20. SapeginaN.V. Hierarchical structure and weighting coefficient inrating of progress. Theworldofscience, cultureandeducation, 2011, no. 2(27), pp. 257–262. (inRussian)
  21. Lyaskovsky VL, Sarkisyan DA. Expert groups formation method to evaluate proposals for FPPI. Kompetentnost' (The Competence), 2020, no. 3, pp. 4–9. (in Russian)
  22. Petrichenko G.S, Petrichenko V.G. Methods of assessing the competence of experts. Scientific journal of KubSAU, 2015, no. 109(05), pp. 80–91. (in Russian)
  23. Postnikov V.M, Spiridonov S.B. Approach to calculation of weighting coefficients of experts’ rank assessments when selecting a development option for an information system. Science and Education of Bauman MSTU, 2013, no. 8, pp. 395–412. (in Russian). https://doi.org/10.7463/0813.0580272
  24. Putivtсeva N.P., Zajceva T.V., Pusnaja O.P., Igrunova S.V., Nesterova E.V., Kaljuzhnaja E.V., Zajceva E.A. Implementation of the program support of the hierarchical multicriteria procedure of the evaluation of experts’ quality. Belgorod State University Scientific Bulletin. Economics. Information Technologies, 2016, no. 16(237), pp. 172–179. (in Russian)
  25. Donetskaya Ju.V. Design procedures for the analysis of the components and parameters of a digital passport. Journal of Physics: Conference Series, 2021, vol. 1828, no. 1, pp. 012103. https://doi.org/10.1088/1742-6596/1828/1/012103
  26. Donetskaya Ju.V., Gatchin Yu.A. Development of design procedures for the synthesis of design solutions for data management, design and production procedures at the stages of the life cycle of an electronic product. Proc. of the Wave Electronics and its Application in Information and Telecommunication Systems (WECONF 2020), 2020, pp. 9131470. https://doi.org/10.1109/WECONF48837.2020.9131470


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