Comparison of Data-Driven Modeling Approaches for Control Optimization of Floating Offshore Wind Turbines

Fuente: arXiv
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Main Authors: Sundarrajan, Athul K., Herber, Daniel R.
Format: Preprint
Published: 2025
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author Sundarrajan, Athul K.
Herber, Daniel R.
author_facet Sundarrajan, Athul K.
Herber, Daniel R.
contents Models that balance accuracy against computational costs are advantageous when designing wind turbines with optimization studies, as several hundred predictive function evaluations might be necessary to identify the optimal solution. We explore different approaches to construct low-fidelity models that can be used to approximate dynamic quantities and be used as surrogates for design optimization studies and other use cases. In particular, low-fidelity modeling approaches using classical systems identification and deep learning approaches are considered against derivative function surrogate models ({DFSMs}), or approximate models of the state derivative function. This work proposes a novel method that utilizes a linear parameter varying (LPV) modeling scheme to construct the DFSM. We compare the trade-offs between these different models and explore the efficacy of the proposed DFSM approach in approximating wind turbine performance and design optimization studies for controllers. Results show that the proposed DFSM approach balances computational time and model accuracy better than the system identification and deep learning based models. Additionally, the DFSM provides nearly a fifty times speed-up compared to the high-fidelity model, while balancing accuracy.
format Preprint
id arxiv_https___arxiv_org_abs_2505_14515
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Comparison of Data-Driven Modeling Approaches for Control Optimization of Floating Offshore Wind Turbines
Sundarrajan, Athul K.
Herber, Daniel R.
Systems and Control
Models that balance accuracy against computational costs are advantageous when designing wind turbines with optimization studies, as several hundred predictive function evaluations might be necessary to identify the optimal solution. We explore different approaches to construct low-fidelity models that can be used to approximate dynamic quantities and be used as surrogates for design optimization studies and other use cases. In particular, low-fidelity modeling approaches using classical systems identification and deep learning approaches are considered against derivative function surrogate models ({DFSMs}), or approximate models of the state derivative function. This work proposes a novel method that utilizes a linear parameter varying (LPV) modeling scheme to construct the DFSM. We compare the trade-offs between these different models and explore the efficacy of the proposed DFSM approach in approximating wind turbine performance and design optimization studies for controllers. Results show that the proposed DFSM approach balances computational time and model accuracy better than the system identification and deep learning based models. Additionally, the DFSM provides nearly a fifty times speed-up compared to the high-fidelity model, while balancing accuracy.
title Comparison of Data-Driven Modeling Approaches for Control Optimization of Floating Offshore Wind Turbines
topic Systems and Control
url https://arxiv.org/abs/2505.14515