Preview

Health, Food & Biotechnology

Advanced search

Comparative study of frequency converters of three-phase electric motors in automatic control of technological parameter

https://doi.org/10.36107/hfb.2020.i3.s71

Abstract

Frequency converters of asynchronous three-phase AC motors are widely used in industry, including food production. A thorough understanding of the technical capabilities of frequency converters contributes to their efficient use. This article discusses a technical comparison of two frequency converters of three-phase electric motors of the Russian company "OWEN" and the Danish company "DANFOSS" according to the criterion of the quality of regulation of the technological parameter. For comparison, a test bench was created, in which the devices were tested in turn, under the same conditions. During the preparation and implementation of testing, it turned out that the hardware capabilities of frequency converters for their use in regulating technological parameters are the same, and the parametric capabilities are different. The frequency converter of the "OWEN" company is equipped with a PI controller, and the frequency converter from "DANFOSS" is equipped with a PID controller. As the results of testing the devices show, despite 

About the Authors

Margarita M. Blagoveshchenskaya
Moscow State University of Food Production
Russian Federation


Mikhail V. Veselov
Moscow State University of Food Production
Russian Federation


References

1. Astrom, K. J. (2002). Control System Design Lecture notes for ME 155A. Department of Mechanical & Environmental Engineering University of California Santa Barbara. University of California Santa Barbara, 2002, 216 – 252. http://clux.x-pec.com/files/fronter/ENE103%20-%20Reguleringsteknikk/fagstoff/suplement%20Reg%20tek%20engelsk%20.pdf, https://www.cds.caltech.edu/~murray/courses/cds101/fa02/caltech/astrom.html

2. Baroud Z., Benalla A.., Ocampo-Martinez C. (2016). Air Flow Regulation in Fuel Cells: An Efficient Design of Hybrid Fuzzy-PID Control. Electrotehnica, Electronica, Automatica (EEA), 2016, vol. 64, no. 4, pp. 28-32, ISSN 1582-5175. http://www.eea-journal.ro/ro/d/5/p/EEA64_4_5

3. Calderon-Cordova, C., Chuquimarca-Carrillo, E., Salinas-Lliviganay, D., Salinas-Bravo, D., Rivera-Lituma, J., & Betancourth, C. R. (2018). Automation of a medicinal herb crusher machine applied to the small food industry. Iberian Conference on Information Systems and Technologies, CISTI, 2018-June, 1–7. https://doi.org/10.23919/CISTI.2018.8399306

4. Carter, C. (2007). A turn of speed. Engineer Vol. 293, Issue 7721, 9 April 2007, pp. 39–42. https://www.scopus.com/record/display.uri?eid=2-s2.0-34247521093&origin=resultslist&sort=plf-f&src=s&nlo=&nlr=&nls=&sid=6bdc9a1049ca07db7a818af1de340f91&sot=a&sdt=cl&cluster=scoprefnameauid%2c%22Carter%2c+C.%2357198467152%22%2ct&sl=17&s=SOURCE-ID+%2829045%29&relpos=1&citeCnt=0&searchTerm=

5. Celebrating the VLT: the first frequency converter. (2014). World Pumps, 2014(3), 12–16. https://doi.org/10.1016/s0262-1762(14)70045-8

6. Kapovsky, B., Zakharov, A., & Nikitina, M. (2020). INTELLIGENT CONTROL SYSTEM FOR MINCED MEAT PRODUCTION. Potravinarstvo Slovak Journal of Food Sciences, 14, 750–758. https://doi.org/10.5219/1342

7. Maheswari, K. T., Bharani Kumar, R., Lavanya, D., & Boopathimanikandan, S. (2020). Design of SVPWM based Closed-Loop Control of Voltage Source Inverter Fed Induction Motor Drive with PID Controller. Proceedings of the 4th International Conference on Inventive Systems and Control, ICISC 2020, 487–492. https://doi.org/10.1109/ICISC47916.2020.9171181

8. Martin, J. (2008). Energy savings from inverter drives in the efficient building. World Pumps, 2008(498), 32–34. https://doi.org/10.1016/S0262-1762(08)70102-0

9. Pangestu, R., Harini, B., Yusivar, F. (2019). Temperature Control of Air Conditioning Compressor System on Electric Vehicles. 4th IEEE Conference on Energy Conversion (CENCON), 2019, 165-170 https://apps.webofknowledge.com/Search.do?product=WOS&SID=C6mgIU1BknoLPlYIdoQ&search_mode=GeneralSearch&prID=502f3c2b-ee7e-4459-8aff-4a59df7efc24https://apps.webofknowledge.com/full_record.do?product=WOS&search_mode=GeneralSearch&qid=3&SID=C6mgIU1BknoLPlYIdoQ&page=1&doc=1&cacheurlFromRightClick=no

10. Patel, V. V. (2020). Ziegler-Nichols Tuning Method: Understanding the PID Controller. Resonance, 25(10), 1385–1397. https://doi.org/10.1007/s12045-020-1058-z

11. Ramirez, S., Zepeda, D. A., Cerda, J., & Torres, V. (2018). A PID controller comparative study of tuning methods for a three-phase induction motor speed control. Lecture Notes in Engineering and Computer Science, 2238, 655–659. https://www.scopus.com/record/display.uri?eid=2-s2.0-85062195766&origin=resultslist&sort=plf-f&src=s&st1=A+PID+Controller+comparative+study+of+tuning+methods+for+a+three-phase+induction+motor&st2=&sid=cd1fda5c6e7d3f64f50fb62696b106e8&sot=b&sdt=b&sl=101&s=TITLE-ABS-KEY%28A+PID+Controller+comparative+study+of+tuning+methods+for+a+three-phase+induction+motor%29&relpos=0&citeCnt=0&searchTerm=

12. Schreitmüller A., Verdier D. (2003). Dedicated frequency inverters for optimising the drinking water supply and the treatment of waste water. Eau, l'INDUSTRIE, les Nuisances, Issue 261, April 2003, Pages 55-57, ISSN: 07555016. https://www.scopus.com/record/display.uri?eid=2-s2.0-0037529121&origin=resultslist&sort=plf-f&src=s&st1=Danfoss+VLT&st2=&sid=6c9a9daf42606f4b38c6a5dd293d903e&sot=b&sdt=b&sl=26&s=TITLE-ABS-KEY%28Danfoss+VLT%29&relpos=4&citeCnt=0&searchTerm=

13. Sindhuja S., Abirami P., Pushpavalli M., Sivagami P. (2019). Implementation of multilevel inverter for controlling induction motor. International Journal of Recent Technology and Engineering, Volume 8, Issue 1, May 2019, Pages 1164-1169, ISSN: 22773878. https://www.scopus.com/record/display.uri?eid=2-s2.0-85067112757&origin=resultslist&sort=plf-f&src=s&st1=inverter+motor+pid+control&nlo=&nlr=&nls=&sid=214ca59a809b1c18b3837c77b8a72b55&sot=b&sdt=b&sl=41&s=TITLE-ABS-KEY%28inverter+motor+pid+control%29&relpos=32&citeCnt=0&searchTerm=

14. Sudjoko, R. I., Hartono, & Iswahyudi, P. (2020). Speed Control of Permanent Magnet Synchronous Motor Using Universal Bridge and PID Controller. Lecture Notes in Mechanical Engineering, 405–416. https://doi.org/10.1007/978-981-15-4481-1_39

15. Wang, S., Liang, H., & Wang, J. (2019). GA PID control research in inverter motor speed governing system. Journal of Computational Methods in Sciences and Engineering, 19(2), 299–306. https://doi.org/10.3233/JCM-180869

16. World Pumps, journal. Volume 2014, Issue 3, March 2014, Pages 12, 14, 16

17. Xiwen G., Yuliang W., Guoli L, Shen L, Yan W. (2018). Motor-pump system based on optimized coordinated control. Electrotehnica, Electronica, Automatica (EEA), 2018, vol. 66, no. 3, pp. 51-57, ISSN 1582-5175. http://www.eea-journal.ro/ro/d/5/p/EEA66_3_7


Review

For citations:


Blagoveshchenskaya M.M., Veselov M.V. Comparative study of frequency converters of three-phase electric motors in automatic control of technological parameter. Health, Food & Biotechnology. 2020;2(3):48-56. (In Russ.) https://doi.org/10.36107/hfb.2020.i3.s71

Views: 418


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


ISSN 2712-7648 (Online)