HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY

Harmonic distortion, arising from nonlinear loads in modern power systems, poses a significant power quality issue, deteriorating overall power quality and affecting sensitive equipment. Extensive research has been conducted to develop effective mitigation techniques, including filters, harmonic com...

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Main Author: Irdina Izzati, Abdul Harun
Format: Final Year Project Report
Language:English
English
Published: Universiti Malaysia Sarawak, (UNIMAS) 2023
Subjects:
Online Access:http://ir.unimas.my/id/eprint/43095/1/Irdina%20Izzati%2024%20pgs.pdf
http://ir.unimas.my/id/eprint/43095/5/Irdina%20Izzati%20ft.pdf
http://ir.unimas.my/id/eprint/43095/
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spelling my.unimas.ir.430952024-01-10T06:49:05Z http://ir.unimas.my/id/eprint/43095/ HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY Irdina Izzati, Abdul Harun TK Electrical engineering. Electronics Nuclear engineering Harmonic distortion, arising from nonlinear loads in modern power systems, poses a significant power quality issue, deteriorating overall power quality and affecting sensitive equipment. Extensive research has been conducted to develop effective mitigation techniques, including filters, harmonic compensators, low harmonic drives, oversizing of neutral conductors, and power factor correction devices. However, tailored solutions are necessary due to the diversity of power sources, harmonics, and equipment. This project focuses on the design aspects of a three-phase Shunt Active Power Filter (SAPF) as an efficient harmonic mitigation device. The SAPF utilizes the synchronous reference frame theory and a hysteresis Proportional-Integral (PI) control algorithm to extract harmonic components and provide compensating currents. Extensive simulation analysis using MATLAB Simulink evaluates the SAPF's performance under different operating conditions, demonstrating its ability to restore distorted current waveforms and surpass the harmonic limits specified by the IEE-519 standards. The SAPF achieves a remarkable reduction in Total Harmonic Distortion (THD) through Frequency Fourier Transform (FFT) analysis. The successful implementation of the proposed filter and its superior harmonic mitigation capabilities represent significant advancements in power quality improvement, surpassing existing methods. The used of synchronous reference frame theory (SRF) for harmonic signal extraction holds promise for future developments in harmonic mitigation techniques. Universiti Malaysia Sarawak, (UNIMAS) 2023 Final Year Project Report NonPeerReviewed text en http://ir.unimas.my/id/eprint/43095/1/Irdina%20Izzati%2024%20pgs.pdf text en http://ir.unimas.my/id/eprint/43095/5/Irdina%20Izzati%20ft.pdf Irdina Izzati, Abdul Harun (2023) HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY. [Final Year Project Report] (Unpublished)
institution Universiti Malaysia Sarawak
building Centre for Academic Information Services (CAIS)
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Sarawak
content_source UNIMAS Institutional Repository
url_provider http://ir.unimas.my/
language English
English
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Irdina Izzati, Abdul Harun
HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY
description Harmonic distortion, arising from nonlinear loads in modern power systems, poses a significant power quality issue, deteriorating overall power quality and affecting sensitive equipment. Extensive research has been conducted to develop effective mitigation techniques, including filters, harmonic compensators, low harmonic drives, oversizing of neutral conductors, and power factor correction devices. However, tailored solutions are necessary due to the diversity of power sources, harmonics, and equipment. This project focuses on the design aspects of a three-phase Shunt Active Power Filter (SAPF) as an efficient harmonic mitigation device. The SAPF utilizes the synchronous reference frame theory and a hysteresis Proportional-Integral (PI) control algorithm to extract harmonic components and provide compensating currents. Extensive simulation analysis using MATLAB Simulink evaluates the SAPF's performance under different operating conditions, demonstrating its ability to restore distorted current waveforms and surpass the harmonic limits specified by the IEE-519 standards. The SAPF achieves a remarkable reduction in Total Harmonic Distortion (THD) through Frequency Fourier Transform (FFT) analysis. The successful implementation of the proposed filter and its superior harmonic mitigation capabilities represent significant advancements in power quality improvement, surpassing existing methods. The used of synchronous reference frame theory (SRF) for harmonic signal extraction holds promise for future developments in harmonic mitigation techniques.
format Final Year Project Report
author Irdina Izzati, Abdul Harun
author_facet Irdina Izzati, Abdul Harun
author_sort Irdina Izzati, Abdul Harun
title HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY
title_short HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY
title_full HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY
title_fullStr HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY
title_full_unstemmed HARMONIC MITIGATION USING SHUNT ACTIVE POWER FILTER BASED ON SYNCHRONOUS REFERENCE FRAME THEORY
title_sort harmonic mitigation using shunt active power filter based on synchronous reference frame theory
publisher Universiti Malaysia Sarawak, (UNIMAS)
publishDate 2023
url http://ir.unimas.my/id/eprint/43095/1/Irdina%20Izzati%2024%20pgs.pdf
http://ir.unimas.my/id/eprint/43095/5/Irdina%20Izzati%20ft.pdf
http://ir.unimas.my/id/eprint/43095/
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score 13.244745