Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power System

This paper presents a new dynamic model of multi-machine power system equipped with GUPFC for power system study, and using PSS and GUPFC POD controller some effective control schemes are proposed to improve power system stability. Based on UPFC configuration, an additional series boosting transform...

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Main Author: Sasongko Pramono Hadi
Format: Article
Language:English
Published: Institute for Research and Public Services 2011-11-01
Series:IPTEK: The Journal for Technology and Science
Subjects:
POD
PSS
Online Access:http://iptek.its.ac.id/index.php/jts/article/view/76/67
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spelling doaj-59c3c42b51f84ea580acd69ee68e67612020-11-24T21:07:13ZengInstitute for Research and Public ServicesIPTEK: The Journal for Technology and Science0853-40982088-20332011-11-01224205213http://dx.doi.org/10.12962/j20882033.v22i4.76Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power SystemSasongko Pramono HadiThis paper presents a new dynamic model of multi-machine power system equipped with GUPFC for power system study, and using PSS and GUPFC POD controller some effective control schemes are proposed to improve power system stability. Based on UPFC configuration, an additional series boosting transformer is considered to define a GUPFC configuration and its mathematical model; Phillips-Heffron scheme is used to formulate machine model, and modification of network dealing with GUPFC parameter is carried out to develop a MIMO as well as comprehensive power system with GUPFC model. Genetics Algorithm method was proposed to lead-lag compensation design, this technique provides the parameter controller. The controller produced supplementary signals, the PSS for machine and POD for GUPFC. By applying a small disturbance, the dynamic stability power system was investigated. Simulation results show that the proposed power system with GUPFC model is valid and suitable for stability analysis. The installation of GUPFC without POD decreased the damping oscillation. But, the results show that the presence of GUPFC in power system network provided by PSS and POD controller is very potential to improve system stability. A 66% overshoot reduction could be reached, it is obtained 12 s in settling time (shorter), although the rise time become 700 ms longer. Simulation results revealed that the role of POD controller is more dominant than the PSS, however both PSS and GUPFC POD controller simultaneously present a positive interaction. Phase angle of converter C, δC is the most significant control signal POD in oscillation damping.http://iptek.its.ac.id/index.php/jts/article/view/76/67genetics algorithmGUPFCmodelingmulti-machinePODPSSstability
collection DOAJ
language English
format Article
sources DOAJ
author Sasongko Pramono Hadi
spellingShingle Sasongko Pramono Hadi
Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power System
IPTEK: The Journal for Technology and Science
genetics algorithm
GUPFC
modeling
multi-machine
POD
PSS
stability
author_facet Sasongko Pramono Hadi
author_sort Sasongko Pramono Hadi
title Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power System
title_short Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power System
title_full Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power System
title_fullStr Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power System
title_full_unstemmed Dynamic Modeling and Damping Function of GUPFC in Multi-Machine Power System
title_sort dynamic modeling and damping function of gupfc in multi-machine power system
publisher Institute for Research and Public Services
series IPTEK: The Journal for Technology and Science
issn 0853-4098
2088-2033
publishDate 2011-11-01
description This paper presents a new dynamic model of multi-machine power system equipped with GUPFC for power system study, and using PSS and GUPFC POD controller some effective control schemes are proposed to improve power system stability. Based on UPFC configuration, an additional series boosting transformer is considered to define a GUPFC configuration and its mathematical model; Phillips-Heffron scheme is used to formulate machine model, and modification of network dealing with GUPFC parameter is carried out to develop a MIMO as well as comprehensive power system with GUPFC model. Genetics Algorithm method was proposed to lead-lag compensation design, this technique provides the parameter controller. The controller produced supplementary signals, the PSS for machine and POD for GUPFC. By applying a small disturbance, the dynamic stability power system was investigated. Simulation results show that the proposed power system with GUPFC model is valid and suitable for stability analysis. The installation of GUPFC without POD decreased the damping oscillation. But, the results show that the presence of GUPFC in power system network provided by PSS and POD controller is very potential to improve system stability. A 66% overshoot reduction could be reached, it is obtained 12 s in settling time (shorter), although the rise time become 700 ms longer. Simulation results revealed that the role of POD controller is more dominant than the PSS, however both PSS and GUPFC POD controller simultaneously present a positive interaction. Phase angle of converter C, δC is the most significant control signal POD in oscillation damping.
topic genetics algorithm
GUPFC
modeling
multi-machine
POD
PSS
stability
url http://iptek.its.ac.id/index.php/jts/article/view/76/67
work_keys_str_mv AT sasongkopramonohadi dynamicmodelinganddampingfunctionofgupfcinmultimachinepowersystem
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