Research to Improve the Quality of the TD3000 Speedometer Testing Device Applying Vector Control Algorithm

International Journal of Electrical and Electronics Engineering
© 2024 by SSRG - IJEEE Journal
Volume 11 Issue 6
Year of Publication : 2024
Authors : Chau Thanh Phuong
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How to Cite?

Chau Thanh Phuong, "Research to Improve the Quality of the TD3000 Speedometer Testing Device Applying Vector Control Algorithm," SSRG International Journal of Electrical and Electronics Engineering, vol. 11,  no. 6, pp. 136-140, 2024. Crossref, https://doi.org/10.14445/23488379/IJEEE-V11I6P115

Abstract:

Nowadays, vector control is being researched and applied in many industries to replace traditional PID control thanks to its advantages, such as easy adjustment, quick response, and high stability. Therefore, this article proposes the application of a vector control algorithm in motor speed control in order to improve the accuracy of TD3000 rotation speed meter testing equipment. The simulation results show that this method has been effective in finding the optimal coefficient for the system to achieve control quality criteria such as small setting errors, fast response times and high stability when loading changes.

Keywords:

 Vector control, Power electronics, Electrical measurement, Turn round speed, Device TD3000.

References:

[1] D. Karaboga and A. Kalinli, “Tuning PID Controller Parameters Using Tabu Search Algorithm,” 1996 IEEE International Conference on Systems, Man and Cybernetics. Information Intelligence and Systems, Beijing, China, vol.1, pp. 134-136, 1996.
[CrossRef] [Google Scholar] [Publisher Link]
[2] A. Baskys, and V. Zlosnikas, “PID Controller with the Switched Parameters,” 2008 11th International Biennial Baltic Electronics Conference, Tallinn, Estonia, pp. 239-242, 2008.
[CrossRef] [Google Scholar] [Publisher Link]
[3] Bhawna Tandon, and Randeep Kaur. “Genetic Algorithm Based Parameter Tuning of PID Controller for Composition Control System,” International Journal of Engineering Science and Technology, vol. 3, no. 8, pp. 6705-6711, 2011.
[Google Scholar] [Publisher Link]
[4] Nahum Shimkin, “Nonlinear Control Systems,” Encyclopedia of Neuroscience, pp. 2886-2889, 2024.
[CrossRef] [Google Scholar] [Publisher Link]
[5] J.A. Norris, “Vector Control of AC Motors,” IEEE 1993 Annual Textile, Fiber and Film Industry Technical Conference, Atlanta, USA, pp. 3/1-3/8, 1993.
[CrossRef] [Google Scholar] [Publisher Link]
[6] Nguyen Phung Quang, and Jörg-Andreas Dittrich, Vector Control of Three-Phase AC Machines - System Development in the Practice, 2nd ed., Springer-Verleg Berlin Heidelberg, 2015.
[CrossRef] [Google Scholar] [Publisher Link]
[7] J.C. Das, Power Systems Handbook, Taylor & Francis Group, 2018.
[Publisher Link]
[8] Güöngör Bal, Nihat Öztürk, and Erdal Bekiroğlu, “Implementation of Indirect Vector Control to Induction Motor with Zero Current Transition Inverter,” 2009 XXII International Symposium on Information, Communication and Automation Technologies, Sarajevo, Bosnia and Herzegovina, pp. 1-6, 2009.
[CrossRef] [Google Scholar] [Publisher Link]
[9] Ashutosh Mishra, Prashant Choudhary, “Speed Control of an Induction Motor by Using Indirect Vector Control Method,” International Journal of Emerging Technology and Advanced Engineering, vol. 2, no. 12, pp. 144-150, 2012.
[Google Scholar]
[10] Ibrahim Senol, Nur Bekiroglu, and Selin Ozcira, “Design and Application of a New Sensorless Induction Motor Drive Implemented by Using Field Oriented Vector Control Method,” 4th International Conference on Power Engineering, Energy and Electrical Drives, Istanbul, Turkey, pp. 1543-1547, 2013.
[CrossRef] [Google Scholar] [Publisher Link]
[11] Nguyen Phung Quang, Matlab and Simulink for Automatic Control Engineers, Hanoi Science and Technology Publishing House, 2005. [12] László Keviczky et al., Control Engineering: MATLAB Exercises, Springer Nature Singapore Pte Ltd, 2019.
[CrossRef] [Google Scholar] [Publisher Link]