DocumentCode :
3445148
Title :
PhotoVoltaic distributed generation for lanai power grid real-time simulation and control integration scenario
Author :
Schenkman, B.L. ; Wilson, David G. ; Robinett, Rush D. ; Kukolich, Keith
Author_Institution :
Sandia Nat. Labs., Albuquerque, NM, USA
fYear :
2010
fDate :
14-16 June 2010
Firstpage :
154
Lastpage :
157
Abstract :
This paper1 discusses the modeling, analysis, and testing in a real-time simulation environment of the Lanai power grid system for the integration and control of PhotoVoltaic (PV) distributed generation. The Lanai Island in Hawaii is part of the Hawaii Clean Energy Initiative (HCEI) to transition to 30% renewable green energy penetration by 2030. In Lanai the primary loads come from two Castle and Cook Resorts, in addition to residential needs. The total peak load profile is 12470 V, 5.5 MW. Currently there are several diesel generators that meet these loading requirements. As part of the HCEI, Lanai has initially installed 1.2 MW of PV generation. The goal of this study has been to evaluate the impact of the PV with respect to the conventional carbon-based diesel generation in real time simulation. For intermittent PV distributed generation, the overall stability and transient responses are investigated. A simple Lanai ”like” model has been developed in the Matlab/Simulink environment (see Fig. 1) and to accommodate real-time simulation of the hybrid power grid system the Opal-RT Technologies RT-Lab environment is used. The diesel generators have been modelled using the SimPowerSystems toolbox swing equations and a custom Simulink module has been developed for the High level PV generation. All of the loads have been characterized primarily as distribution lines with series resistive load banks with one VAR load bank. Three-phase faults are implemented for each bus. Both conventional and advanced control architectures will be used to evaluate the integration of the PV onto the current power grid system. The baseline numerical results include the stable performance of the power grid during varying cloud cover (PV generation ramping up/down) scenarios. The importance of assessing the real-time scenario is included.
Keywords :
AC generators; diesel-electric generators; distributed power generation; hybrid power systems; photovoltaic power systems; power distribution lines; power generation faults; power grids; transient response; Hawaii Clean Energy Initiative; Lanai power grid real-time simulation system; Matlab-Simulink environment; Opal-RT technologies RT-Lab environment; SimPowerSystems toolbox; VAR load bank; advanced control architectures; carbon-based diesel generation; control integration scenario; diesel generators; distribution lines; high level PV generation; hybrid power grid system; intermittent PV distributed generation; photovoltaic distributed generation; power 1.2 MW; power 5.5 MW; renewable green energy; series resistive load banks; swing equations; three-phase faults; transient response; voltage 12470 V; Analytical models; Distributed control; Mathematical model; Photovoltaic systems; Power grids; Power system modeling; Power system stability; Real time systems; Solar power generation; System testing; Distributed generation; Power engineering; Real-time simulation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Electronics Electrical Drives Automation and Motion (SPEEDAM), 2010 International Symposium on
Conference_Location :
Pisa
Print_ISBN :
978-1-4244-4986-6
Electronic_ISBN :
978-1-4244-7919-1
Type :
conf
DOI :
10.1109/SPEEDAM.2010.5542249
Filename :
5542249
Link To Document :
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