Loading [MathJax]/extensions/MathMenu.js
Multi-Domain Semantic Information and Physical Behavior Modeling of Power Systems and Gas Turbines Expanding the Common Information Model | IEEE Journals & Magazine | IEEE Xplore

Multi-Domain Semantic Information and Physical Behavior Modeling of Power Systems and Gas Turbines Expanding the Common Information Model


UML class design based on the CIM semantic representation rules is applied to the ISO 15926 standard to derive the multi-domain semantics required by integrated electrica...

Abstract:

Due to the rapid increase of intermittent energy resources (IERs), there is a need to have dispatchable production available to ensure secure operation and increase oppor...Show More

Abstract:

Due to the rapid increase of intermittent energy resources (IERs), there is a need to have dispatchable production available to ensure secure operation and increase opportunity for energy system flexibility. Gas turbine-based power plants offer flexible operation that is being improved with new technology advancements. Those plants provide, in general, quick start together with significant ramping capability, which can be exploited to balance IERs. Consequently, to understand the potential source of flexibility, better models for gas turbines are required for power system studies and analysis. In this paper, both the required semantic information and physical behavior models of such multi-domain systems are considered. First, UML class diagrams and RDF schemas based on the common information model standards are used to describe the semantic information of the electrical power grid. An extension that exploits the ISO 15926 standard is proposed herein to derive the multi-domain semantics required by integrated electrical power grid with detailed gas turbine dynamic models. Second, the Modelica language is employed to create the equation-based models, which represent the behavior of a multi-domain physical system. A comparative simulation analysis between the power system domain model and the multi-domain model has been performed. Some differences between the turbine dynamics representation of the commonly used GGOV1 standard model and a more detailed gas turbine model are shown.
UML class design based on the CIM semantic representation rules is applied to the ISO 15926 standard to derive the multi-domain semantics required by integrated electrica...
Published in: IEEE Access ( Volume: 6)
Page(s): 72663 - 72674
Date of Publication: 20 November 2018
Electronic ISSN: 2169-3536

Funding Agency:


References

References is not available for this document.