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Expansion of the functionality of interrogating analog sensors in the control systems of LLC «Vega-GAZ» for the fuel and energy complex

https://doi.org/10.20914/2310-1202-2021-3-198-206

Abstract

On the instructions of LLC «Vega-GAZ», a research topic was formulated for the development of a functional block for processing typical analog sensors with various transmitters. The block must provide input of primary data, provide for the possibility of outputting the channel to the «Repair» and «Simulation» states, and also provide verification of the correctness of the input signal value. In the course of the research, the analysis of the technical characteristics of the devices used in the control systems of LLC «Vega-GAZ» was carried out. The setting of the electronic module VTM, the converter module MTM 0399/М0, the voltage signal converter MACX MCR and the programmable logic controller REGUL R200 has been studied and mastered. Within the framework of the block functions formulated in the task, the set of tasks for signal processing is established. It is required to initialize the analog inputs, set the setpoints for each input, check the presence of a signal at the input, compare the values of the analog signals with the setpoints, and additional processing of the analog signals (filtering, linearization, etc.). A universal algorithm for the operation of the block for various signals is proposed. A description of functions and a program in ST language in the SCADA-complex «SONATA» have been compiled using the example of a block for processing analog signals from temperature sensors downstream of a low-pressure turbine from a MTM «Vega-GAZ» converter. The developed block was debugged for its implementation in the application software of LLC «Vega-GAZ»

About the Authors

M. V. Alekseev
Voronezh State University of Engineering Technologies
Russian Federation

Cand. Sci. (Engin.), associate professor, Information and control system department, Revolution Av., 19, Voronezh, 394036, Russia



I. A. Khaustov
Voronezh State University of Engineering Technologies

Dr. Sci. (Engin.), head of department, information and control system department, Revolution Av., 19, Voronezh, 394036, Russia



V. S. Kudryashov
Voronezh State University of Engineering Technologies

Dr. Sci. (Engin.), professor, information and control system department, Revolution Av., 19, Voronezh, 394036, Russia



A. V. Ivanov
Voronezh State University of Engineering Technologies

Cand. Sci. (Engin.), associate professor, information and control system department, Revolution Av., 19, Voronezh, 394036, Russia



I. A. Kozenko
Voronezh State University of Engineering Technologies

Cand. Sci. (Engin.), associate professor, information and control system department, Revolution Av., 19, Voronezh, 394036, Russia



M. B. Kuzmichev
Voronezh State University of Engineering Technologies

student, information and control system department, Revolution Av., 19, Voronezh, 394036, Russia



References

1. Website of Vega-GAZ LLC. Available at: http://www.vega-gaz.ru/about (in Russian).

2. Alekseev M.V. Development of a functional block for processing typical analog sensors with various transmitters: R&D report. Voronezh, 2021. 23 p. (in Russian).

3. Automatic control systems for the fuel and energy complex (product catalog). Moscow, LLC "Vega-GAZ", 2021. 48 p. (in Russian).

4. SCADA system "Sonata". Development guides and tools. Available at: https://sonata.ezan.ac.ru (in Russian).

5. Ishchenko A.N. DispSky cloud SCADA complex. Automation in industry. 2020. no. 1. pp. 57-59. (in Russian).

6. Lapaeva O.F., Inevatova O.A., Dedeeva S.A. Modern problems and prospects for the development of the fuel and energy complex. Economic relations. 2019. vol. 9. no. 3. pp. 2129-2142. (in Russian).

7. Khodychkin A.Yu., Zorya E.I., Nazarov V.P. On the use of data center services in information systems of the fuel and energy complex (part 1). Automation, telemechanization and communication in the oil industry. 2013. no. 12. pp. 17-27. (in Russian).

8. Tretyakov A.A., Elizarov I.A., Nazarov V.N. Control automation tools: controller programming systems. Tambov, TSTU, 2017. 82 p. Available at: https://biblioclub.ru/index.php?page=book&id=499053 (in Russian).

9. Zatsarinnaya Y., Logacheva A., Suslov K. Outlook on the Development of Smart Energy Systems. 2020 International Ural Conference on Electrical Power Engineering (UralCon). IEEE, 2020. pp. 19-23. doi: 10.1109/UralCon49858.2020.9216266

10. Dolotovskii I.V., Dolotovskaya N.V., Larin E.A. Software and Dataware for Energy Generation and Consumption Analysis System of Gas Processing Enterprises. Journal of Physics: Conference Series. IOP Publishing, 2018. vol. 1015. no. 4. pp. 042010.

11. Cepeda J.C., Rivera G., Farinango L. Improving the Computer Aided Power System Operation in Ecuador: Enhancements to SCADA/EMS. 2015 Asia-Pacific Conference on Computer Aided System Engineering. IEEE, 2015. pp. 78-83. doi: 10.1109/APCASE.2015.21

12. Kamel K., Kamel E. Programmable logic controllers: Industrial control. McGraw Hill Professional, 2013. 432 p.

13. Bolton W. Programmable logic controllers. Newnes, 2015. 412 p.

14. Wcislik M., Suchenia K., ?askawski M. Programming of sequential control systems using functional block diagram language. IFAC-PapersOnLine. 2015. vol. 48. no. 4. pp. 330-335.

15. Barkalov A., Titarenko L., Mazurkiewicz M. Programmable logic controllers. Foundations of Embedded Systems. Springer, Cham, 2019. pp. 145-162.

16. Kudryashov V.S., Ivanov A.V., Alekseev M.V. and others. Setting up and programming digital control systems using controllers, operator panels and frequency converters (theory and practice). Voronezh, VSUET, 2020. 215 p. (in Russian).

17. Kryukov O.V. Automation of gas transmission units. Russian Internet Journal of Industrial Engineering. 2016. vol. 4. no. 1. pp. 36-41.

18. Khasaev G.R., Tsybatov V.A. Tooling of modeling and strategic planning of energy-efficient development of the regional fuel and energy complex. Eurasian Journal of Analytical Chemistry. 2017. vol. 12. no. 7. pp. 1169-1182. doi: 10.12973/ejac.2017.00242a

19. Puzyrny N., Petrova Z., Povorina A., Volkova E. et al. Impact of digital transformation and innovation on the development of the fuel and energy complex. IOP Conference Series: Earth and Environmental Science. IOP Publishing, 2021. vol. 808. no. 1. pp. 012027.

20. Kuznetsova N.V., Kuznetsova E.V. Challenges of Russian fuel and energy complex. Mediterranean Journal of Social Sciences. 2015. vol. 6. no. 5. pp. 112. doi: 10.5901/mjss.2015.v6n5p112

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For citations:


Alekseev M.V., Khaustov I.A., Kudryashov V.S., Ivanov A.V., Kozenko I.A., Kuzmichev M.B. Expansion of the functionality of interrogating analog sensors in the control systems of LLC «Vega-GAZ» for the fuel and energy complex. Proceedings of the Voronezh State University of Engineering Technologies. 2021;83(3):198-206. (In Russ.) https://doi.org/10.20914/2310-1202-2021-3-198-206

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ISSN 2226-910X (Print)
ISSN 2310-1202 (Online)