Preview

Modern Science and Innovations

Advanced search

Analytical tuning of regulators in a cascade automatic discharge control system

https://doi.org/10.37493/2307-910X.2023.3.4

Abstract

When synthesizing automatic control systems, there is a problem with complex definition of controller parameters, and the main criterion becomes the achievement of stable operation, and the quality of the transient becomes of secondary importance. Such problems may arise in the presence of two or more nested loops in the initial system. The correct synthesis of such systems is possible by using a slave control structure that allows us to replace the inner loop with an equivalent aperiodic link of the first order. By the example of an automatic temperature control system for superheated steam, the principle of building a slave control structure and the synthesis of such a system are shown in the paper.

About the Authors

D. A. Kovalev
St. Petersburg State University of Technologies and Design
Russian Federation

Dmitry A. Kovalev – Cand. Sci. (Tech.), Head of the Department of Automation of Technological Processes and Productions of the Higher School of Technology and Energy,

Saint Petersburg



V. A. Sharyakov
St. Petersburg State University of Technologies and Design
Russian Federation

Vladimir A. Sharyakov – Cand. Sci. (Tech.), Associate Professor, Associate Professor of
the Department of Automation of Technological Processes and Productions of the Higher School of Technology and Energy, 

Saint Petersburg



O. L. Sharyakova
St. Petersburg State University of Architecture and Civil Engineering
Russian Federation

Olga L. Sharyakova – Cand. Sci. (Tech.), Associate Professor, Associate Professor at the
Department of Electric Power and Electrical Engineering, 

Saint Petersburg



V. A. Lebedeva
"Research and Production Enterprise "EPRO" Limited Liability Company
Russian Federation

Valeria A. Lebedeva – Engineer, Master, 

Saint Petersburg



References

1. Rotach VYa. Teoriya avtomaticheskogo upravleniya teploenergeticheskimi processami: Uchebnik dlya vuzov. M: Energoatomizdat. 1985. 296 p, il.

2. Pletnev GP. Avtomatizaciya tekhnologicheskih processov i proizvodstv v teploenergetike [Elektronnyj resurs]: uchebnik dlya studentov vuzov. M.: Izdatel'skij dom MEI, 2016.

3. Kovalev DA, Sharyakov VA, Sharyakova OL, Lebedeva VA. Sintez dvuhkonturnoj sistem avtomaticheskogo upravleniya urovnem vody parovogo kotla. Vestnik Sankt-Peterburgskogo gosudarstvennogo universiteta tekhnologii i dizajna. Seriya 1: Estestvennye i tekhnicheskie nauki. 2022;3:136-142. DOI 10.46418/2079-8199_2022_3_24

4. Frer F. Vvedenie v elektronnuyu tekhniku regulirovaniya. Orttenburger: per. s nem. V.P. Cishevskogo. M.: Energiya, 1973. 190 p.

5. Basharin AV, Novikov VA, Sokolovskij GG. Upravlenie elektroprivodami. L.: Energoizdat, 1982. 392 p.

6. Kovalev DA, Sharyakov VA, Sharyakova OL. Modelirovanie sistemy avtomaticheskogo upravleniya moshchnost'yu energobloka pri izmenenii obshchej nagruzki energosistemy. Vestnik Sankt-Peterburgskogo gosudarstvennogo universiteta tekhnologii i dizajna. Seriya 1: Estestvennye i tekhnicheskie nauki. 2022;1:122-129. DOI: 10.46418/2079-8199_2022_1_19. EDN RGFHOC.

7. Kovalev DA, Sharyakov VA, Sharyakova OL. Teoriya avtomaticheskogo upravleniya: ucheb. Posobie M-vo nauki i vysshego obrazovaniya RF, S.-Peterb. gos. un-t prom. tekhnologij i dizajna, Vyssh. shk. tekhnologii i energetiki. Sankt-Peterburg: VSHTE SPbGUPTiD, 2020. 79 p.

8. Sacuk TP, Sharyakov VA, Sharyakova OL [i dr.]. Ob avtomaticheskoj stabilizacii napryazheniya kontaktnoj seti elektricheskogo podvizhnogo sostava. Elektrotekhnika. 2021;4:36- 40.

9. Satsuk TP, Sharyakov VA, Vorob'ev AA [et al.]. Automatic Voltage Stabilization of an Electric Rolling Stock Catenary System. Russian Electrical Engineering. 2021;92(4):213-216. DOI: 10.3103/S1068371221300015

10. Makarova AA, Kaliberda IV, Pershin IM, Kovalev DA. Modeling a Production Well Flow Control System Using the Example of the Verkhneberezovskaya Area. Proceedings of the 2022 Conference of Russian Young Researchers in Electrical and Electronic Engineering, ElConRus 2022, St. Petersburg, 25–28 yanvarya 2022 goda. St. Petersburg, 2022;760-764. DOI: 10.1109/ElConRus54750.2022.9755852. EDN PGAHVB.

11. Makarova AA, Mantorova IV, Kovalev DA, Kutovoy IN. The Modeling of Mineral Water Fields Data Structure. Proceedings of the 2021 IEEE Conference of Russian Young Researchers in Electrical and Electronic Engineering, ElConRus 2021, Moscow, 26–28 yanvarya 2021 goda. Moscow, 2021;517-521. DOI: 10.1109/ElConRus51938.2021.9396250

12. Ilyushin AN, Kovalev DA, Afanasev PM. Development of Information Measuring Complex of Distributed Pulse Control System. 2019 International Multi-Conference on Industrial Engineering and Modern Technologies, FarEastCon 2019, Vladivostok, 01–04 oktyabrya 2019 goda. Vladivostok: Institute of Electrical and Electronics Engineers Inc., 2019;8934173. DOI: 10.1109/FarEastCon.2019.8934173

13. Kovalev DA. Algoritm modelirovaniya sodoregeneracionnogo kotla. Energetika i avtomatizaciya v sovremennom obshchestve: Materialy IV Mezhdunarodnoj nauchno-prakticheskoj konferencii obuchayushchihsya i prepodavatelej. V 2-h chastyah, Sankt-Peterburg, 04 iyunya 2021 goda / Pod obshchej redakciej T.YU. Korotkovoj. Tom CHast' 1. – 198095, Sankt-Peterburg, ul. Ivana CHernyh, 4: Vysshaya shkola tekhnologii i energetiki Federal'nogo gosudarstvennogo byudzhetnogo obrazovatel'nogo uchrezhdeniya vysshego obrazovaniya "Sankt-Peterburgskij gosudarstvennyj universitet promyshlennyh tekhnologij i dizajna", 2021;218-221. EDN VSMGXY.

14. Kovalev DA. Algoritm modelirovaniya zony piroliza i zony okisleniya sodoregeneracionnogo kotla. Energetika i avtomatizaciya v sovremennom obshchestve: Materialy V Mezhdunarodnoj nauchno-prakticheskoj konferencii obuchayushchihsya i prepodavatelej, SanktPeterburg, 20 maya 2022 goda. Sankt-Peterburg: Sankt-Peterburgskij gosudarstvennyj universitet promyshlennyh tekhnologij i dizajna, 2022;190-193. EDN PVNVLJ.

15. Kovalev DA. Increase in environmental safety of recovery boiler / D. A. Kovalev, L. A. Rusinov. IOP Conference Series: Earth and Environmental Science: 4, Virtual, Online, 24–26 noyabrya 2021 goda. Virtual, Online, 2022;012068. DOI: 10.1088/1755-1315/990/1/012068. EDN AOGERP.

16. Bobuh AA, Kovalev DA. Povyshenie energosberezheniya zakrytogo centralizovannogo teplosnabzheniya goroda pri rekonstrukcii central'nogo i modernizacii individual'nogo teplovyh punktov. Energosberezhenie. Energetika. Energoaudit. 2014;3(121):12-18.

17. Bobuh AA, Kovalev DA, Klimov AA, Dzevochko AM. Komp'yuternye energosberegayushchie tekhnologii upravleniya sistemami zhizneobespecheniya zdanij. VostochnoEvropejskij zhurnal peredovyh tekhnologij. 2014;2(72):48-53. DOI 10.15587/1729- 4061.2014.30503

18. Kovalev DA, Bobuh AA. Povyshenie energoeffektivnosti polucheniya i ispol'zovaniya geoteplovoj energii za schet avtomatizacii tekhnologicheskih processov. Energosberezhenie. Energetika. Energoaudit. 2013;10(116):18-23.

19. Kovalev DA, Bobuh AA. Avtomatizaciya tekhnologicheskih processov sistem solnechnyh kollektorov i kondicionirovaniya vozduha. Energosberezhenie. Energetika. Energoaudit. 2013;7(113):2-6.

20. Bobuh AA, Kovalyov DA Komp'yuterno-integrirovannaya sistema avtomatizacii tekhnologicheskih ob"ektov upravleniya centralizovannym teplosnabzheniem: monografiya pod red. Bobuha AA. H.: HNUGH im. A. N. Beketova, 2013. 226 p.

21. Kovalev DA, Bobuh AA. Issledovanie ob"ektov upravleniya zakrytoj sistemy centralizovannogo teplosnabzheniya na ih fizicheskih modelyah. Energosberezhenie. Energetika. Energoaudit. 2012:10(104):35-40.

22. Kovalyov DA. Povyshenie effektivnosti ekspluatacii istochnika teplovoj energii. Energosberezhenie. Energetika. Energoaudit. 2010;11(81):48-54.

23. Kovalev DA, Rusinov LA, Kurkina VV. Razrabotka diagnosticheskoj modeli dlya podsistem sodoregeneracionnogo kotloagregata. Sistemnyj sintez i prikladnaya sinergetika: Sbornik nauchnyh rabot XI Vserossijskoj nauchnoj konferencii, p. Nizhnij Arhyz, 27 sentyabrya–01 2022 goda. Rostov-na-Donu–Taganrog: Yuzhnyj federal'nyj universitet, 2022;40-43. DOI: 10.18522/syssyn-2022-6. EDN OYPYPT.

24. Kovalev DA. Analiz vozmozhnyh narushenij tekhnologicheskih processov v sodoregeneracionnom kotle. Izvestiya Sankt-Peterburgskogo gosudarstvennogo tekhnologicheskogo instituta (tekhnicheskogo universiteta). 2021;56(82):108-111. DOI: 10.36807/1998-9849-2020-56-82-108-111. EDN WYMCWM.


Review

For citations:


Kovalev D.A., Sharyakov V.A., Sharyakova O.L., Lebedeva V.A. Analytical tuning of regulators in a cascade automatic discharge control system. Modern Science and Innovations. 2023;(3):36-47. (In Russ.) https://doi.org/10.37493/2307-910X.2023.3.4

Views: 121


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2307-910X (Print)