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Journal article

Combination of meteorological reanalysis data and stochastic simulation for modelling wind generation variability

In Renewable Energy 2020, Volume 159, pp. 991-999
From

GRID Integration and Energy Systems, Wind Energy Systems Division, Department of Wind Energy, Technical University of Denmark1

Department of Wind Energy, Technical University of Denmark2

University College Dublin3

As installed wind generation capacities increase, there is a need to model variability in wind generation in detail to analyse its impacts on power systems. Utilization of meteorological reanalysis data and stochastic simulation are possible approaches for modelling this variability. In this paper, a combination of these two approaches is used to model wind generation variability.

Parameters for the model are determined based on measured wind speed data. The model is used to simulate wind generation from the level of a single offshore wind power plant to the aggregate onshore wind generation of western Denmark. The simulations are compared to two years of generation measurements on 15 min resolution.

The results indicate that the model, combining reanalysis data and stochastic simulation, can successfully model wind generation variability on different geographical aggregation levels on sub-hourly resolution. It is shown that the addition of stochastic simulation to reanalysis data is required when modelling offshore wind generation and when analysing onshore wind in small geographical regions.

Language: English
Year: 2020
Pages: 991-999
ISSN: 18790682 and 09601481
Types: Journal article
DOI: 10.1016/j.renene.2020.06.033
ORCIDs: Koivisto, Matti , Sørensen, Poul and Cutululis, Nicolaos

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