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Automatic identification of wind turbine models using evolutionary multiobjective optimization

delete2016-03-01
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OA
AI
W
William La Cava *
K
Kourosh Danai
L
Lee Spector
P
Paul Fleming
A
Alan Wright
M
Matthew A. Lackner
DOI:10.1016/j.renene.2015.09.068delete
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摘要

摘要

En 中文
Modern industrial-scale wind turbines are nonlinear systems that operate in turbulent environments. As such, it is difficult to characterize their behavior accurately across a wide range of operating conditions using physically meaningful models. Customarily, the models derived from wind turbine data are in 'black box' format, lacking in both conciseness and intelligibility. To address these deficiencies, we use a recently developed symbolic regression method to identify models of a modern horizontal-axis wind turbine in symbolic form. The method uses evolutionary multiobjective optimization to produce succinct dynamic models from operational data while making minimal assumptions about the physical properties of the system. We compare the models produced by this method to models derived by other methods according to their estimation capacity and evaluate the trade-off between model intelligibility and accuracy. Several succinct models are found that predict wind turbine behavior as well as or better than more complex alternatives derived by other methods. We interpret the new models to show that they often contain intelligible estimates of real process physics. (C) 2015 Elsevier Ltd. All rights reserved.
Keyword:
Wind energy
System identification
Genetic programming
Multiobjective optimization

期刊

Renewable Energy 封面图
Renewable Energy
IF:
9.1
论文数:
2.6W
被引数:
12.1W

机构

U
university of massachusetts system
学者数:
3.9W
论文数: 3.6W
被引数: 42
U
University of Massachusetts Amherst
学者数:
1.1W
论文数: 8.9K
被引数: 19
U
united states department of energy (doe)
学者数:
11.3W
论文数: 9.6W
被引数: 246
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