Unbalance Source Voltage and Load Current Mitigation Using UPQC based on Power Impelling Optimization Technique

Authors

  • Rajarajan R. Assistant Professor, Excel Engineering College, Namakkal, Tamil Nadu, India Author
  • Dr.R. Prakash Professor, Department of EEE, Muthayammal Engineering College, Rasipuram, Tamil Nadu, India Author

DOI:

https://doi.org/10.61841/evg9j672

Keywords:

Power Impelling Optimization Technique (PIOT), Unified Power Quality Conditioner (UPQC), Active Power Filter

Abstract

Power quality is the most important one of the transmission and distribution system. In recent years, various power electronics devices have been implemented, so the load voltage is various, and it causes different problems. The voltage sag, swell, and harmonics are the power quality problems presented in this problem that cause damage in the system load, so the power quality improvement in this system is very important. The Unified Power Quality Control is used to reduce the power supply problems. It can be implemented based on the proposed Power Impelling Optimization Technique (PIOT); it can attain the improvement of power quality in the power transmission system. In this UPQC system contain series and shunt converter to compensate the unbalanced voltage and reduce the problem like sag, swell voltage and harmonics of this system. The proposed system is getting the reference voltage and current value in the transmission line and analyzing the problem of this process and giving the proper switching to the converter via the controller. The active power filter of shunt and series is used to reduce the loss in the transmission line and give quality power to the load. The proposedPower Impelling Optimization Technique(PIOT)is utilized to increase the quality of power and reduce the losses. This proposed system analysis in the Simulink software to get the result of this system, the simulation shows the system input, output voltage, and total harmonic distortion.

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References

[1] Jian Ye, H. B. Gooi, “Optimal Design and Control Implementation of UPQC Based on Variable Phase

Angle Control Method” in IEEE Trans on Industrial Informatics, Volume. 14, issue. 7, page. 3109 – 3123,

2018.

[2] Sachin Devassy, Bhim Singh, “Design and Performance Analysis of Three-Phase Solar PV Integrated

UPQC” in IEEE Trans on Industry Applications, Volume. 54, Issue 1, 2018.

[3] Swaroopa S. Bhosale, Y. N. Bhosale, “Power Quality Improvement by Using UPQC: A Review” in

International Conference on Control, Power, Communication, and Computing Technologies, 2018.

[4] Radhika Jayant Kadam, Karishma Amin Mulani, “Voltage Distortion at Distribution side reduced by

Modified UPQC” in 3rd International Conf for Convergence in Technology, 2018.

[5] Ashish Patel, Hitesh Datt Mathur, “Improving Performance of UPQC-DG for Compensation of Unbalanced

Loads” in IEEE India International Conf on Power Electronics, 2018.

[6] Muneer V, Avik Bhattacharya, “Cascaded H Bridge based Three-Phase Four-Wire UPQC” in 13th

International Conference on Industrial and Information Systems, 2018.

[7] Venkata Reddy Kota, Sudheer Vinnakoti, “An Artificial Neural Network-based Controller for MLC-UPQC

with Power Angle Adjustment” in IEEE Region 10 Conf (TENCON), Malaysia, 2017.

[8] Siddharthi Lahu Nikam, Kamal Sandeep, “Analysis of Modified Three-Phase Four-Wire UPQC design’ in

Third International Conf on Science Technology Engineering & Management, 2017.

[9] Jithin Sukumaran, Avik Bhattacharya, “Investigation on Reduced DC Link Voltage Based UPQC for

Harmonic Compensation under Unbalanced Load” in IEEE International Conf on Technological

Advancements in Power and Energy, 2017.

[10] Modesto, Silva, “Versatile Unified Power Quality Conditioner Applied to Three-Phase Four-Wire

Distribution Systems Using a Dual Control Strategy” in IEEE Trans on Power Electronics, Volume. 31,

issue. 8, page. 5503–5514, 2016.

[11] Qianming Xu, Fujun Ma, “Analysis and Control of M3C-Based UPQC for Power Quality Improvement in

Medium/High-Voltage Power Grid” in IEEE Trans on power electronics, Volume. 31, issue. 12, page.

8182–8194, 2016.

[12] H. B. Gooi, Jian Ye, “Optimization of the Size of UPQC System Based on Data-Driven Control Design” in

IEEE Trans on Smart Grid, Volume. 9, issue. 4, page. 2999–3008, 2016.

[13] Nikhil S. Borse, Shembekar, “Power Quality Improvement using Dual Topology of UPQC” in International

Conf on Global Trends in Signal Processing, Information Computing, and Communication, 2016.

[14] Abdul Mannan Rauf, Amit Vilas Sant, “A Novel Ten-Switch Topology for Unified Power Quality

Conditioner” in IEEE Trans on Power Electronics, Volume. 31, Issue 10, Page 6937–6946, 2015.

[15] Mashhood Hasan, Abdul Quaiyum Ansari, “Parameters Estimation of a Series VSC and Shunt VSC to

Design a Unified Power Quality Conditioner (UPQC)” in the 39th National Systems Conference, 2015.

[16] Bharath Babu Ambati, Vinod Khadkikar, “Optimal Sizing of UPQC Considering VA Loading and

Maximum Utilization of Power-Electronic Converters” in IEEE Trans on power delivery, Volume. 29,

issue. 3, page. 1490 – 1498, 2014.

[17] Srinivas Bhaskar Karanki, Nagesh Geddada, “A Modified Three-phase Four Wire UPQC Topology with

Reduced DC-link Voltage Rating” in IEEE Trans on Industrial Electronics, Volume. 60, Issue 9, page.

3555–3566, 2013.

[18] Vinod Khadkikar, “Enhancing Electric Power Quality Using UPQC: A Comprehensive Overview” in IEEE

Trans on power electronics, Volume. 27, issue. 5, page. 2284–2297, 2012.

[19] Javier A. Munoz, Jose R. Espinoza, “Design of a Discrete-Time Linear Control Strategy for a Multicell

UPQC” in IEEE Trans on industrial electronics, Volume. 59, issue. 10, page. 3797–3807, 2012.

[20] Hossein Heydari, Amir Hassan Moghadasi, “Optimization Scheme in Combinatorial UPQC and SFCL

Using Normalized Simulated Annealing” in IEEE Trans on power delivery, Volume. 26, issue. 3, page.

1489 – 1498, 2011.

[21] Metin Kesler, Engin Ozdemir, “Synchronous-Reference-Frame-Based Control Method for UPQC under

Unbalanced and Distorted Load Conditions” in IEEE Trans on Industrial Electronics, Volume. 58, issue. 9,

page. 3967–3975, 2011.

[22] Prakash, R. and Vasanthi, R. “Speed Control of DC-DC Converter fed DC Motor using Robust Adaptive

Intelligent Controller”, Journal of Vibration and Control, December 2013. (JCR, Impact Factor: 4.355)

(Indexed in Thomson Reuters)

[23] Prakash, R. and Muruganandham, A. “A Novel Model Reference Intelligent Adaptive Control Using Neural

Network And Fuzzy Logic Controller”, Journal Of Theoretical And Applied Information

Technology (ISSN 1992-8645), April 2014 (Indexed in Scopus)

[24] Prakash, R.and Muruganandham, A, “Design and Implementation of Fuzzy Logic-based Intelligent Adaptive

Speed Control for DC Motor, Australian Journal of Basic and Applied Sciences, January 2014 (Indexed in

Scopus)

[25] Prakash, R. and Anita, R. “Robust Model Reference Adaptive Intelligent Control” Springer-International

Journal of Control, automation and system (IJCAS) Vol. 10, No. 2, 2012 (ISSN1598-6446) (JCR, Impact

Factor: 1.065) (Indexed in Thomson Reuters)

[26] Prakash, R. and Anita, R. “Modeling and Simulation of Fuzzy Logic Controller Based Model Reference

Adaptive Control”, International Journal of Innovative Computing, Information and Control (IJCIC), Vol.8,

No. 4, 2012 (ISSN1349-4198) (JCR, Impact Factor: 1.664) (Indexed in Thomson Reuters)

[27] Prakash, R. and Anita, R. “Design of Intelligent Adaptive Control using Neural Network and Fuzzy Logic

Controller”, European Journal of Scientific Research (EJSR), Vol.57, No 1, 2011 (ISSN: 1532-5016)

(Indexed in Scopus)

[28] Prakash, R. and Anita, R. “Design of Model Reference Adaptive Intelligent Controller using Neural

Network for Nonlinear Systems”, Journal of Electric Engineering Vol 11, No 4, 2011 (ISSN 1582-4594)

(Indexed in Scopus)

[29] Prakash, R. and Anita, R. “Neuro-PI controller-based Model Reference Adaptive Control for Nonlinear

Systems”, International Journal of Engineering, Science and Technology (IJEST), Vol. 3, No. 6, 2011

(ISSN: 2141-2839)

[30] Prakash, R. and Anita, R. “A New Approach to Model Reference Adaptive Control using Fuzzy Logic

Controller for Nonlinear Systems”, International Journal of Computer Science and Information Security

(IJCSIS), Vol. 9, No. 2, pp. 86–93, 2011 (ISSN: 1947-5500)

[31] Prakash, R. and Anita, R. “Design of Model Reference Adaptive Intelligent Controller using Neural

Network for Nonlinear Systems”, International Review of Automatic Control (IREACO), Vol. 2, No. 2,

pp. 153–161, 2011 (ISSN: 1974-6059)

[32] Prakash, R. and Anita, R. “Robust model Reference Adaptive PI Control”, Journal of Theoretical and

Applied Information Technology (IJTIT) (ISSN 1992-8645) Vol.14, No.1, pp. 51–59, 2010.

[33] Prakash, R. Wahidabanu, R.S.D., and Vasanthi, R. “Component modeled messaging services for pervasive

environment using ML-IDL”, International Journal of Wulfenia Vol. 20, No. 2, 2013

[34] Prakash, R. and Anita, R. “Model Reference Adaptive PI Control” International Journal of Electronic

Engineering Research (IJEER) (ISSN 0975 - 6450), Vol. 2, No. 2, pp. 189–199, 2010.

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Published

31.05.2020

How to Cite

R. , R., & R. , P. (2020). Unbalance Source Voltage and Load Current Mitigation Using UPQC based on Power Impelling Optimization Technique. International Journal of Psychosocial Rehabilitation, 24(3), 2014-2027. https://doi.org/10.61841/evg9j672