Grid Simulator for Testing a Wind Turbine on Offshore Floating Platform
An important aspect of such offshore testing of a wind turbine floating platform is electrical loading of the wind turbine generator. An option of interconnecting the floating wind turbine with the onshore grid via submarine power cable is limited by many factors such as costs and associated environmental aspects (i.e., an expensive and lengthy sea floor study is needed for cable routing, burial, etc.). It appears to be a more cost effective solution to implement a standalone grid simulator on a floating platform itself for electrical loading of the test wind turbine. Such a grid simulator must create a stable fault-resilient voltage and frequency bus (a micro grid) for continuous operation of the test wind turbine. In this report, several electrical topologies for an offshore grid simulator were analyzed and modeled.
Citation Formats
TY - DATA
AB - An important aspect of such offshore testing of a wind turbine floating platform is electrical loading of the wind turbine generator. An option of interconnecting the floating wind turbine with the onshore grid via submarine power cable is limited by many factors such as costs and associated environmental aspects (i.e., an expensive and lengthy sea floor study is needed for cable routing, burial, etc.). It appears to be a more cost effective solution to implement a standalone grid simulator on a floating platform itself for electrical loading of the test wind turbine. Such a grid simulator must create a stable fault-resilient voltage and frequency bus (a micro grid) for continuous operation of the test wind turbine. In this report, several electrical topologies for an offshore grid simulator were analyzed and modeled.
AU - Gevorgian, Vahan
DB - C-MIX - Community Microgrid Information Exchange
DP - Open EI | National Laboratory of the Rockies
DO - 10.2172/1036049
KW - Wind energy
KW - Battery energy storage
KW - Solar
KW - Photovoltaics
KW - PV
KW - Diesel generators
KW - Other liquid-fuel generators
KW - Maintenance and operations
KW - Operations
KW - Maintenance
KW - Commissioning
KW - Standards
KW - Interconnection
KW - Protection
KW - Planning and design
KW - Planning
KW - Design
LA - English
DA - 2012/02/01
PY - 2012
PB - NLR
T1 - Grid Simulator for Testing a Wind Turbine on Offshore Floating Platform
UR - https://doi.org/10.2172/1036049
ER -
Gevorgian, Vahan . Grid Simulator for Testing a Wind Turbine on Offshore Floating Platform. NLR, 1 February, 2012, C-MIX - Community Microgrid Information Exchange. https://doi.org/10.2172/1036049.
Gevorgian, V. (2012). Grid Simulator for Testing a Wind Turbine on Offshore Floating Platform. [Data set]. C-MIX - Community Microgrid Information Exchange. NLR. https://doi.org/10.2172/1036049
Gevorgian, Vahan . Grid Simulator for Testing a Wind Turbine on Offshore Floating Platform. NLR, February, 1, 2012. Distributed by C-MIX - Community Microgrid Information Exchange. https://doi.org/10.2172/1036049
@misc{CMIX_Dataset_271,
title = {Grid Simulator for Testing a Wind Turbine on Offshore Floating Platform},
author = {Gevorgian, Vahan },
abstractNote = {An important aspect of such offshore testing of a wind turbine floating platform is electrical loading of the wind turbine generator. An option of interconnecting the floating wind turbine with the onshore grid via submarine power cable is limited by many factors such as costs and associated environmental aspects (i.e., an expensive and lengthy sea floor study is needed for cable routing, burial, etc.). It appears to be a more cost effective solution to implement a standalone grid simulator on a floating platform itself for electrical loading of the test wind turbine. Such a grid simulator must create a stable fault-resilient voltage and frequency bus (a micro grid) for continuous operation of the test wind turbine. In this report, several electrical topologies for an offshore grid simulator were analyzed and modeled.},
url = {https://cmix.openei.org/submissions/271},
year = {2012},
howpublished = {C-MIX - Community Microgrid Information Exchange, NLR, https://doi.org/10.2172/1036049},
note = {Accessed: 2026-07-31},
doi = {10.2172/1036049}
}
https://dx.doi.org/10.2172/1036049
Details
Data from Feb 1, 2012
Last updated Mar 30, 2026
Submitted Jun 2, 2026
Organization
NLR
Contact
Vahan Gevorgian

