Novel Repetitive Control Technique for Three Phase Four Wire Shunt Active Power Filter

Kedarisetty Bhargava Ravi Kanth, D Tatarao, K Manoz Kumar Reddy

Abstract


This paper presents a discrete dreary control procedure for three stage four wire (3P4W) shunt enthusiastic force channel (SEPF). By and large, the control plan for power gadgets includes two control circles: slow acting external voltage circle and speedy performing inside current control circle. The reference for inward current circle is occasional in climate and can't be basically followed by PI controller. The dreary regulators (RC) are notable for their following capacity of occasional sign and deal high addition at every one of the frequencies. The high increase in higher recurrence reach might lead towards unsteadiness. Hence, in proposed work, the standard RC is changed by square its affectability work. Fluffy rationale regulator is utilized in this task to improve the force quality. This methodology brings about low sufficiency of affectability work while offering profound indents at low to mid frequencies range and more modest scores at high frequencies. This control approach has been reproduced and execute on 3P4W SAPF.


References


Pablo Acu˜na, Luis Mor´an, Marco Rivera, Juan Dixon, and Jos´e Rodriguez, “Improved Active Power Filter Performance for Renewable Power Generation Systems,” IEEE Trans. Power Electronics., vol. 29, no. 2, pp. 687–694, Feb. 2014.

M. Aredes, J. Hafner, and K. Heumann, “Three-phase four-wire shunt active filter control strategies,” IEEE Trans. Power Electron., vol. 12, no. 2, pp. 311–318, Mar. 1997.

H. Akagi, “New trends in active filters for power conditioning,” Ind. Appl. IEEE Trans. On, vol. 32, no. 6, pp. 1312–1322, 1996.

C. Lascu, L. Asiminoaei, I. Boldea, I. Boldea and F. Blaabjerg, “High performance current controller for selective harmonic compensation in active power filters,” IEEE Trans. Power Electron., vol. 22, no. 5, 1826-1835, Sep. 2007.

Q. N. Trinh and H. H. Lee, “An advanced current control strategy for three-phase shunt active power filters,” IEEE Trans. Ind. Electron., vol. 60, no. 12, pp. 5400-5410, Dec. 2014.

Y. Suresh, A. K. Panda and M. Suresh, “Real-time implementation of adaptive fuzzy hysteresis-band current control technique for shunt active power filter,” IET Power Electron. vol. 5, no. 7, pp. 1188-1195, 2012.

L. Wang, C. S. Lam, M. C. Wong, N. Y. Dai, K. W. Lao and C. K. Wong, “Non-linear adaptive hysteresis band pulse-width modulation control for hybrid active power filters to reduce switching loss,” IET Power Electron., vol. 8, no. 11, pp. 2156-2167, Nov. 2015.

F. Briz, P. Garcaí, M. W. Degner, D. Daíz-Reigosa and J. M. Guerrero, “Dynamic behavior of current controllers for selective harmonic compensation in three-phase active power filters,” IEEE Trans. Ind. Appl., vol. 49, no. 3, pp. 1411-1420, May-Jun. 2013.

C. Lascu, L. Asiminoaei, I. Boldea and F. Blaabjerg, “Frequency response analysis of current controllers for selective harmonic compensation in active power filters,” IEEE Trans. Ind. Electron., vol. 56, no. 2, pp. 337-347, Feb. 2009.

D. D. Puerto-Flores, J. M. A. Scherpen, M. Liserre, M. M. D. Vries, M. J. Kransse and V. G. Monopoli, “Passivity-based control by series/parallel damping of single-phase PWM voltage source converter,” IEEE Trans. Control Syst. Technol., vol.22, no. 4, pp. 1310-1322, Jul. 2014.

Y. Gui, W. Kim and C. C. Chung. “Passivity-based control with nonlinear damping for type 2 STATCOM systems,” IEEE Trans. Power System., vol. 31, no. 4, pp. 2824-2833, Jul. 2016.

Y. Han, L. Xu, M. M. Khan, C. Chen, G. Yao and L. D. Zhou, “Robust deadbeat control scheme for a hybrid APF with resetting filter and ADALINE-based harmonic estimation algorithm,” IEEE Trans. Ind. Electron., vol. 58, no. 9, pp. 3893-3904, Sep. 2011.

M. Singh, and A. Chandra, “Real Time Implementation of ANFIS Control for Renewable Interfacing Inverter in 3P4W Distribution Network,” IEEE Trans. Industrial Electron, vol. 60, no.1, pp. 121-128, Jan. 2013.

M. Qasin, P. Kanjiya, and V . Khadkikar, “Artificial-neuralnetworkbased phase-locking scheme for active power filters,” IEEE Trans. Power Electron., vol. 61, pp. 3857 – 3866, Aug. 2014.

A. Trivedi, and M. Singh, “Repetitive Controller for VSIs in Droop Based AC-Microgrid,” IEEE Trans. Power Electronics, Vol. 32, No. 8, pp. 6595-6604, Aug.-2017.

Qingzeng Yan, Xiaojie Wu, X. Yuan, and Y. Geng, “An Improved Grid Voltage Feedforward Strategy for High-Power Three-Phase Grid Connected Inverters Based on the Simplified Repetitive Predictor,” IEEE Trans. Power Electronics


Full Text: PDF [Full Text]

Refbacks

  • There are currently no refbacks.


Copyright © 2013, All rights reserved.| ijseat.com

Creative Commons License
International Journal of Science Engineering and Advance Technology is licensed under a Creative Commons Attribution 3.0 Unported License.Based on a work at IJSEat , Permissions beyond the scope of this license may be available at http://creativecommons.org/licenses/by/3.0/deed.en_GB.