The power harmonic components distribution study in the power circuit of a dynamic voltage restorer

Authors

  • Maksim Bezzubm Kremenchuk Mykhailo Ostrohradskyi National University, Ukraine
  • Oleksiy Bialobrzheskyi Kremenchuk Mykhailo Ostrohradskyi National University, Ukraine
  • Oleg Todorov Kremenchuk Mykhailo Ostrohradskyi National University, Ukraine

DOI:

https://doi.org/10.15588/1607-6761-2023-1-2

Keywords:

Dynamic voltage restorer, harmonic distortion, voltage transformer, harmonic power

Abstract

Purpose. Investigation of the distribution of harmonic power components in the power circuit of a dynamic voltage restorer.

Methodology. On the basis of the differential equations of the power circuit of a dynamic restorer, a search for the relationship between the mode parameters and the parameters of the circuit elements is performed. On the basis of the obtained expressions, a model of a dynamic voltage regulator was created using the methods of mathematical modeling in the visual programming environment..

Findings. The equations that reflect the relationship between the mode parameters of a dynamic voltage restorer and the parameters of circuit elements are obtained. As a result of modeling the mode with different harmonic composition of current and voltage, the following features of the distribution of instantaneous power components are revealed.

Originality. It has been established that the presence of different current and voltage harmonics acting in the transformer of a dynamic restorer causes additional power harmonics that are transformed in the windings. It is noted that the low-frequency power harmonics of the LC filter dominate on the capacitor, which is connected in parallel to the transformer winding, while the level of high-frequency components caused by PWM modulation for the capacitor and the filter choke differ slightly. The zero-frequency power component of the storage capacitor corresponds to a tripled zero-time power component at the output of the converter, which is due to its operation in three phases. This cannot be extended to the second and third harmonics of the powers of the converter and the capacitor; these components are absent in the latter, which is due to energy exchange processes between the phases of the converter.

Practical value. Using the obtained expressions, the principle of determining the parameters of the elements of the power circuit of a dynamic voltage restorer, in particular, the storage elements, is formulated.

Author Biographies

Maksim Bezzubm, Kremenchuk Mykhailo Ostrohradskyi National University

PhD student at the Department of Electrical Engineering, Kremenchuk Mykhailo Ostrohradskyi National University, Kremenchuk

Oleksiy Bialobrzheskyi, Kremenchuk Mykhailo Ostrohradskyi National University

PhD., Associate Professor, Associate Professor of the Department of Electrical Engineering, Kremenchuk Mykhailo Ostrohradskyi National University, Kremenchuk

Oleg Todorov, Kremenchuk Mykhailo Ostrohradskyi National University

PhD student at the Department of Electrical Engineering, Kremenchuk Mykhailo Ostrohradskyi National University, Kremenchuk

References

S. Mikkili, A.K. Panda, Power Quality Issues: Current Harmonics, Florida: CRC Press, 2018, p. 160. DOI 10.1201/9781315222479.

H. Akagi, E. H. Watanabe, M. Aredes, The Instantaneous Power Theory, in Instantaneous Power Theory and Applications to Power Conditioning, (2017). John Wiley & Sons, Inc., Hoboken, NJ, USA. doi: 10.1002/9781119307181.ch3.

3. Bezzub, M.A. & Bialobrzheskyi, Olexii & Reva, Ihor & Todorov, O.. (2021). Series active power filter functioning study under conditions of different indicators of power quality deviation. Reporter of the Priazovskyi State Technical University. Section: Technical sciences. 129-138. 10.32782/2225-6733.43.2021.16

Moghassemi, Ali & Sanjeevikumar, P.. (2020). Dynamic Voltage Restorer (DVR): A Comprehensive Review of Topologies, Power Converters, Control Methods, and Modified Configurations. Energies. 13. 10.3390/en13164152.

R. Sedaghati, M. Ghasemi and M. Hayatdavudi, "Performance study of Dynamic Voltage Restorer (DVR) in order to power quality improvement," 2012 Proceedings of 17th Conference on Electri-cal Power Distribution, 2012, pp. 1-6.

T. Appala Naidu, "The Role Of Dynamic Voltage Restorer (DVR) in improving power quality," 2016 2nd International Conference on Advances in Electrical, Electronics, Information, Communication and Bio-Informatics (AEEICB), 2016, pp. 136-141, doi: 10.1109/AEEICB.2016.7538259.

Bondarenko, S., Bialobrzheskyi, О., & Vlasenko, R. (2018). Investigation of the influence of the transformer of a series active filter on the quality of voltage. Electrical Engineering And Power Engineering, 1, 93-101. doi:http://dx.doi.org/10.15588/1607-6761-2018-1-10.

Bezzub, Maksim & Todorov, O. & Bialobrzheskyi, Olexii & Reva, Ihor. (2022). The Effect Frequency Characteristics of the Series Active Filter with a Voltage-positive Transformer Power Circuit on Quality of Filtering.. 10.1109/MEES58014.2022.10005782.

3. Yao, Sen & Zhu, Zheng & Zhang, Hua & Cao, Jun & Zhang, Guang. (2014). The Design of Filter Parameters of Dynamic Voltage Restorer in Medium Voltage Network. Applied Mechanics and Materials. 654.

Chen, Guodong & Zhu, Miao & Cai, Xu. (2014). Parameter Optimization of the LC filters Based on Multiple Impact Factors for Cascaded H-bridge Dynamic Voltage Restorers. Journal of Power Electronics. 14. 10.6113/JPE.2014.14.1.165.

Sartran, Laurent & Barrett, Samuel & Kuncoro, Adhiguna & Stanojević, Miloš & Blunsom, Phil & Dyer, Chris. (2022). Transformer Grammars: Augmenting Transformer Language Models with Syntactic Inductive Biases at Scale. Transactions of the Association for Computational Linguistics. 10. 1423-1439. 10.1162/tacl_a_00526.

Vaishnav, Navneet & Krishna Bajjuri, & Jain, Amit. (2022). Inductor Selection, Improved Active Damping and Speed Sensorless Operation Without Voltage Sensors in IM Drive With LC Filter. IEEE Transactions on Power Electronics. 37. 1-10. 10.1109/TPEL.2022.3192117

Li, Guanlin & Amirabadi, Mahshid & Chen, Xiyou & Lehman, Brad. (2022). The Methodology of Constructing the Quadratic Converters. IEEE Journal of Emerging and Selected Topics in Power Electronics. PP. 1-1. 10.1109/JESTPE.2022.3157002

Chenchireddy, Kalagotla & Sreejyothi, Khammam-pati. (2022). Level-Shifted PWM Techniques Ap-plied to Flying Capacitor Multilevel Inverter. 10.1109/ICEARS53579.2022.9752074.

Bezzub, Maksim & Todorov, O. & Bia-lobrzheskyi, Olexii & Reva, Ihor. (2021). Unified Power Quality Conditioner Electrical Complex for Compensation Influence of Sharply Variable Loading. 222-227. 10.1109/KhPIWeek53812.2021.9570033

Published

2023-06-30

How to Cite

Bezzubm, M., Bialobrzheskyi, O., & Todorov, O. (2023). The power harmonic components distribution study in the power circuit of a dynamic voltage restorer. Electrical Engineering and Power Engineering, (1), 19–29. https://doi.org/10.15588/1607-6761-2023-1-2