DocumentCode
2026183
Title
Conversion architectures for combined photovoltaic storage systems: Modeling and efficiency analysis
Author
Bourry, Franck ; Martin, J. ; Boyra, Maialen
Author_Institution
CEA-LITEN/DTS/Lab. for Solar Syst. (L2S), Nat. Inst. for Solar Energy (INES), Le Bourget du Lac, France
fYear
2013
fDate
16-20 June 2013
Firstpage
1
Lastpage
6
Abstract
In order to increase the integration of photovoltaic generation into the electricity grid, photovoltaic systems may be combined with electrical energy storage system (ESS). Such combination increases the controllability of the resulting PV-storage plant. Different conversion architectures may be used for the combined PV-storage system. The objective of this paper is to compare the efficiency of different conversion architectures when used for a particular application and for a selectable period of time. For this purpose, a flexible simulation tool, that allows analyzing different case studies, has been built. In the simulation tool the power converters are modeled through efficiency tables that are calculated from a detailed model of the power converter. The converter model includes commutation and conduction losses of IGBT modules, and filters and transformers losses. DC models of the PV system, as well as of the storage system, are also integrated. The analysis is based on simulations of the operation of the PV combined with the storage system for a one year period and a half hour time step.
Keywords
commutation; energy storage; insulated gate bipolar transistors; photovoltaic power systems; power convertors; power system simulation; DC models; IGBT modules; PV system; PV-storage plant; commutation losses; conduction losses; different conversion architectures; electrical energy storage system; electricity grid; filter losses; photovoltaic generation into; photovoltaic storage systems; photovoltaic systems; power converter model; simulation tool; transformer losses; Batteries; Circuit faults; Computer architecture; Insulated gate bipolar transistors; Integrated circuit modeling; Mathematical model; Photovoltaic systems; conversion architecture; efficiency; energy storage systems; high power PV storage system design; modeling; optimization; photovoltaic systems; power electronics;
fLanguage
English
Publisher
ieee
Conference_Titel
PowerTech (POWERTECH), 2013 IEEE Grenoble
Conference_Location
Grenoble
Type
conf
DOI
10.1109/PTC.2013.6652471
Filename
6652471
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