Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow Analysis

This paper proposes the impact of plug-in electric vehicles (PEVs) integrated into a power distribution system based on voltage-dependent control. The gasolinegate situation has many people turning to electric vehicles as a more environmentally friendly option, especially in smart community areas. T...

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Main Authors: Yuttana Kongjeen, Krischonme Bhumkittipich
Format: Article
Language:English
Published: MDPI AG 2018-06-01
Series:Energies
Subjects:
V2G
Online Access:http://www.mdpi.com/1996-1073/11/6/1571
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spelling doaj-86a84ac1966e4a509819f17cb9fc603d2020-11-25T01:22:37ZengMDPI AGEnergies1996-10732018-06-01116157110.3390/en11061571en11061571Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow AnalysisYuttana Kongjeen0Krischonme Bhumkittipich1Department of Electrical Engineering, Rajamangala University of Technology Thanyaburi, Pathum Thani 12110, ThailandDepartment of Electrical Engineering, Rajamangala University of Technology Thanyaburi, Pathum Thani 12110, ThailandThis paper proposes the impact of plug-in electric vehicles (PEVs) integrated into a power distribution system based on voltage-dependent control. The gasolinegate situation has many people turning to electric vehicles as a more environmentally friendly option, especially in smart community areas. The advantage of PEVs is modern vehicles that can use several types of fuel cells and batteries as energy sources. The proposed PEVs model was developed as a static load model in power distribution systems under balanced load conditions. The power flow analysis was determined by using certain parameters of the proposed electrical network. The main research objective was to determine the voltage magnitude profiles, the load voltage deviation, and total power losses of the electrical power system by using the new proposed methodology. Furthermore, it investigated the effects of the constant power load, the constant current load, the constant impedance load, and the plug-in electric vehicles load model. The IEEE 33 bus system was selected as the test system. The proposed methodology assigned the balanced load types in a steady state condition and used the new methodology to solve the power flow problem. The simulation results showed that increasing the plug-in electric vehicles load had an impact on the grids when compared with the other four load types. The lowest increased value for the plug-in electric vehicles load had an effect on the load voltage deviation (0.062), the total active power loss (120 kW) and the total reactive power loss (80 kVar), respectively. Therefore, this study verified that the load of PEVs can affect the electrical power system according to the time charging and charger position. Therefore, future work could examine the difference caused when PEVs are attached to the electrical power system by means of the conventional or complex load type.http://www.mdpi.com/1996-1073/11/6/1571modellingnormal chargingelectric vehicledistribution systemV2Gvoltage-dependent
collection DOAJ
language English
format Article
sources DOAJ
author Yuttana Kongjeen
Krischonme Bhumkittipich
spellingShingle Yuttana Kongjeen
Krischonme Bhumkittipich
Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow Analysis
Energies
modelling
normal charging
electric vehicle
distribution system
V2G
voltage-dependent
author_facet Yuttana Kongjeen
Krischonme Bhumkittipich
author_sort Yuttana Kongjeen
title Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow Analysis
title_short Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow Analysis
title_full Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow Analysis
title_fullStr Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow Analysis
title_full_unstemmed Impact of Plug-in Electric Vehicles Integrated into Power Distribution System Based on Voltage-Dependent Power Flow Analysis
title_sort impact of plug-in electric vehicles integrated into power distribution system based on voltage-dependent power flow analysis
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-06-01
description This paper proposes the impact of plug-in electric vehicles (PEVs) integrated into a power distribution system based on voltage-dependent control. The gasolinegate situation has many people turning to electric vehicles as a more environmentally friendly option, especially in smart community areas. The advantage of PEVs is modern vehicles that can use several types of fuel cells and batteries as energy sources. The proposed PEVs model was developed as a static load model in power distribution systems under balanced load conditions. The power flow analysis was determined by using certain parameters of the proposed electrical network. The main research objective was to determine the voltage magnitude profiles, the load voltage deviation, and total power losses of the electrical power system by using the new proposed methodology. Furthermore, it investigated the effects of the constant power load, the constant current load, the constant impedance load, and the plug-in electric vehicles load model. The IEEE 33 bus system was selected as the test system. The proposed methodology assigned the balanced load types in a steady state condition and used the new methodology to solve the power flow problem. The simulation results showed that increasing the plug-in electric vehicles load had an impact on the grids when compared with the other four load types. The lowest increased value for the plug-in electric vehicles load had an effect on the load voltage deviation (0.062), the total active power loss (120 kW) and the total reactive power loss (80 kVar), respectively. Therefore, this study verified that the load of PEVs can affect the electrical power system according to the time charging and charger position. Therefore, future work could examine the difference caused when PEVs are attached to the electrical power system by means of the conventional or complex load type.
topic modelling
normal charging
electric vehicle
distribution system
V2G
voltage-dependent
url http://www.mdpi.com/1996-1073/11/6/1571
work_keys_str_mv AT yuttanakongjeen impactofpluginelectricvehiclesintegratedintopowerdistributionsystembasedonvoltagedependentpowerflowanalysis
AT krischonmebhumkittipich impactofpluginelectricvehiclesintegratedintopowerdistributionsystembasedonvoltagedependentpowerflowanalysis
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