Estimation of Uncertainty of Wind Energy Predictions
With Application to Weather Routing and Wind Power Generation
(Sprache: Englisch)
Wind drives in combination with weather routing can lower the fuel consumption of cargo ships significantly. For this reason, the author describes a mathematical method based on quantile regression for a probabilistic estimate of the wind propulsion force on a ship route.
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Wind drives in combination with weather routing can lower the fuel consumption of cargo ships significantly. For this reason, the author describes a mathematical method based on quantile regression for a probabilistic estimate of the wind propulsion force on a ship route.
Klappentext zu „Estimation of Uncertainty of Wind Energy Predictions “
Currently, a new generation of fuel-efficient ships, which use wind force in addition to conventional propulsion technology, is being developed. This study describes a mathematical method for a probabilistic estimate of the wind propulsion force on a ship route. The method is based on quantile regression, which makes it suitable for various ship routes with variable weather conditions. Furthermore, the author takes different macro weather situations into account for the calculation of the statistical distributions. He validates the results for a multi-purpose carrier, a ship route in the North Atlantic Ocean and archived weather forecasts. It showed that the wind force can be estimated more accurately if the macro weather situation is taken into account properly.
Inhaltsverzeichnis zu „Estimation of Uncertainty of Wind Energy Predictions “
Uncertainty in Wind Power Generation and Weather Routing - Offshore Wind Power Logistics - Weather Routing - Ship Propulsion Energy - Wind Propulsion Systems - Statistical Pattern matching - Uncertainty in Weather Predictions - Estimation of Prediction Uncertainty - Prediction Intervals - Ensemble Prediction Systems - Quantile Regression - Local Energy Distribution Moments
Autoren-Porträt von David Zastrau
David Zastrau studied Computer Science at the University of Bremen where he received his PhD. He researches artificial intelligence, maritime logistics, as well as weather and wave forecast accuracy.
Bibliographische Angaben
- Autor: David Zastrau
- 2017, Neuausgabe, XVI, 123 Seiten, Maße: 15,3 x 21,6 cm, Gebunden, Englisch
- Verlag: Peter Lang Ltd. International Academic Publishers
- ISBN-10: 3631718853
- ISBN-13: 9783631718858
- Erscheinungsdatum: 07.03.2017
Sprache:
Englisch
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