PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality Improvements

This paper presents a Hybrid Shunt Active Power Filter (HSAPF) optimized by hybrid Particle Swarm Optimization-Grey Wolf Optimization (PSO-GWO) and Fractional Order Proportional-Integral-Derivative Controller (FOPIDC) for reactive power and harmonic compensation under balance and unbalance loading c...

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Main Authors: Alok Kumar Mishra, Soumya Ranjan Das, Prakash K. Ray, Ranjan Kumar Mallick, Asit Mohanty, Dillip K. Mishra
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
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Online Access:https://ieeexplore.ieee.org/document/9069960/
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author Alok Kumar Mishra
Soumya Ranjan Das
Prakash K. Ray
Ranjan Kumar Mallick
Asit Mohanty
Dillip K. Mishra
author_facet Alok Kumar Mishra
Soumya Ranjan Das
Prakash K. Ray
Ranjan Kumar Mallick
Asit Mohanty
Dillip K. Mishra
author_sort Alok Kumar Mishra
collection DOAJ
description This paper presents a Hybrid Shunt Active Power Filter (HSAPF) optimized by hybrid Particle Swarm Optimization-Grey Wolf Optimization (PSO-GWO) and Fractional Order Proportional-Integral-Derivative Controller (FOPIDC) for reactive power and harmonic compensation under balance and unbalance loading conditions. Here, the parameters of FOPID controller are tuned by PSO-GWO technique to mitigate the harmonics. Comparing Passive with Active Filters, the former is tested to be bulky and design is complex and the later is not cost effective for high rating. Hence, a hybrid structure of shunt active and passive filter is designed using MATLAB/Simulink and in real time experimental set up. The compensation process for shunt active filter is different from predictable methods such as (<italic>p-q</italic>) or (<inline-formula> <tex-math notation="LaTeX">${i}_{d}-{i}_{q}$ </tex-math></inline-formula>) theory, in which only the source current is to be sensed. The performance of the proposed controller is tested under different operating conditions such as steady and transient states and indices like Total Harmonic Distortion (THD), Input Power Factor (IPF), Real Power (P) and Reactive Power (Q) are estimated and compared with that of other controllers. The parameters of FOPIDC and Conventional PID Controller (CPIDC) are optimized by the techniques such as PSO, GWO and hybrid PSO-GWO. The comparative simulation/experiment results reflect the better performance of PSO-GWO optimized FOPIDC based HSAPF with respect to PSO/GWO optimized FOPIDC/CPIDC based HSAPF under different operating conditions.
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spelling doaj-art-70d50efa5f6047ecb10099ee8f4077a62025-01-09T00:00:43ZengIEEEIEEE Access2169-35362020-01-018744977451210.1109/ACCESS.2020.29886119069960PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality ImprovementsAlok Kumar Mishra0Soumya Ranjan Das1Prakash K. Ray2https://orcid.org/0000-0003-4632-6201Ranjan Kumar Mallick3Asit Mohanty4Dillip K. Mishra5Department of Electrical and Electronics Engineering, SOA Deemed to be University, Bhubaneswar, IndiaDepartment of Electrical Engineering, International Institute of Information Technology (IIIT), Bhubaneswar, IndiaDepartment of Electrical Engineering, College of Engineering and Technology (CET), Bhubaneswar, IndiaDepartment of Electrical and Electronics Engineering, SOA Deemed to be University, Bhubaneswar, IndiaDepartment of Electrical Engineering, College of Engineering and Technology (CET), Bhubaneswar, IndiaSchool of Electrical and Data Engineering, University of Technology Sydney, Sydney, NSW, AustraliaThis paper presents a Hybrid Shunt Active Power Filter (HSAPF) optimized by hybrid Particle Swarm Optimization-Grey Wolf Optimization (PSO-GWO) and Fractional Order Proportional-Integral-Derivative Controller (FOPIDC) for reactive power and harmonic compensation under balance and unbalance loading conditions. Here, the parameters of FOPID controller are tuned by PSO-GWO technique to mitigate the harmonics. Comparing Passive with Active Filters, the former is tested to be bulky and design is complex and the later is not cost effective for high rating. Hence, a hybrid structure of shunt active and passive filter is designed using MATLAB/Simulink and in real time experimental set up. The compensation process for shunt active filter is different from predictable methods such as (<italic>p-q</italic>) or (<inline-formula> <tex-math notation="LaTeX">${i}_{d}-{i}_{q}$ </tex-math></inline-formula>) theory, in which only the source current is to be sensed. The performance of the proposed controller is tested under different operating conditions such as steady and transient states and indices like Total Harmonic Distortion (THD), Input Power Factor (IPF), Real Power (P) and Reactive Power (Q) are estimated and compared with that of other controllers. The parameters of FOPIDC and Conventional PID Controller (CPIDC) are optimized by the techniques such as PSO, GWO and hybrid PSO-GWO. The comparative simulation/experiment results reflect the better performance of PSO-GWO optimized FOPIDC based HSAPF with respect to PSO/GWO optimized FOPIDC/CPIDC based HSAPF under different operating conditions.https://ieeexplore.ieee.org/document/9069960/Fractional order proportional-integral-derivative controller (FOPIDC)harmonic compensationhybrid shunt active power filter (HSAPF)particle swarm optimization-grey wolf optimization (PSO-GWO)power quality
spellingShingle Alok Kumar Mishra
Soumya Ranjan Das
Prakash K. Ray
Ranjan Kumar Mallick
Asit Mohanty
Dillip K. Mishra
PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality Improvements
IEEE Access
Fractional order proportional-integral-derivative controller (FOPIDC)
harmonic compensation
hybrid shunt active power filter (HSAPF)
particle swarm optimization-grey wolf optimization (PSO-GWO)
power quality
title PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality Improvements
title_full PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality Improvements
title_fullStr PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality Improvements
title_full_unstemmed PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality Improvements
title_short PSO-GWO Optimized Fractional Order PID Based Hybrid Shunt Active Power Filter for Power Quality Improvements
title_sort pso gwo optimized fractional order pid based hybrid shunt active power filter for power quality improvements
topic Fractional order proportional-integral-derivative controller (FOPIDC)
harmonic compensation
hybrid shunt active power filter (HSAPF)
particle swarm optimization-grey wolf optimization (PSO-GWO)
power quality
url https://ieeexplore.ieee.org/document/9069960/
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