DocumentCode
776098
Title
Wireless-Control Strategy for Parallel Operation of Distributed-Generation Inverters
Author
Guerrero, Josep M. ; Matas, José ; De Vicuna, Luis García ; Castilla, Miguel ; Miret, Jaume
Author_Institution
Univ. Politecnica de Catalunya, Barcelona
Volume
53
Issue
5
fYear
2006
Firstpage
1461
Lastpage
1470
Abstract
In this paper, a method for the parallel operation of inverters in an ac-distributed system is proposed. This paper explores the control of active and reactive power flow through the analysis of the output impedance of the inverters and its impact on the power sharing. As a result, adaptive virtual output impedance is proposed in order to achieve a proper reactive power sharing, regardless of the line-impedance unbalances. A soft-start operation is also included, avoiding the initial current peak, which results in a seamless hot-swap operation. Active power sharing is achieved by adjusting the frequency in load transient situations only, owing to which the proposed method obtains a constant steady-state frequency and amplitude. As opposed to the conventional droop method, the transient response can be modified by acting on the main control parameters. Linear and nonlinear loads can be properly shared due to the addition of a current harmonic loop in the control strategy. Experimental results are presented from a two-6-kVA parallel-connected inverter system, showing the feasibility of the proposed approach
Keywords
distributed power generation; electric impedance; invertors; load flow control; power distribution control; reactive power; transient response; 6 kVA; AC distributed-generation inverters; active power flow control; current harmonic loop; droop control method; hot-swap operation; microgrids; nonlinear loads; output impedance analysis; parallel operation; power sharing; reactive power flow control; soft-start operation; transient response; wireless-control; Cogeneration; Communication system control; Frequency; Impedance; Inverters; Phase locked loops; Reactive power; Reactive power control; Steady-state; Voltage control; Distributed generation (DG); droop control method; microgrids; nonlinear loads;
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2006.882015
Filename
1705637
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