A mixed-scale hardware-in-the-loop testing framework for wave energy converter-autonomous underwater vehicle systems

Hardware-in-the-Loop (HIL) offers a promising pathway for evaluating wave energy converter–autonomous underwater vehicle (WEC–AUV) systems in the laboratory, where a mix of laboratory-scale waves and full-scale AUVs present significant challenges for conventional testing approaches. This study aims to develop and validate an HIL testing framework that reproduces wave forces and dock motions for WEC-AUV systems by integrating wave tank experiments with numerical simulations. Core methodologies, including wave distortion, wave prediction, excitation force estimation, and dock motion control, were developed and experimentally validated in the Large Wave Flume at O.H. Hinsdale Wave Research Laboratory. The approach replicated ocean wave forcing by matching water acceleration or velocity amplitudes under inertia- and drag-force-dominated conditions. Wave prediction enabled real-time estimation of excitation force and resulting dock motion. Across the tested regular and irregular waves, the coefficient of determination R 2 ranged from 0.850 to 0.990 for wave prediction and from 0.956 to 0.995 for excitation force estimation. Dock motion control strategies were implemented in the HIL framework to provide improved AUV docking conditions. Overall, this work provided a practical and experimentally validated pathway for advancing wave energy–powered AUV docking systems.

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Publication Details

Journal
Ocean Engineering
Published
2026-09-25
DOI
https://doi.org/10.1016/j.oceaneng.2026.128189
Primary Topic
Real-time simulation and control systems
Type
article
Field-Weighted Citation Impact
0.00

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article

A mixed-scale hardware-in-the-loop testing framework for wave energy converter-autonomous underwater vehicle systems

Geoffrey A. Hollinger, Bryson R.D. Robertson, Bret Bosma, David Okushemiya et al.
Ocean Engineering
Real-time simulation and control systems
article

A mixed-scale hardware-in-the-loop testing framework for wave energy converter-autonomous underwater vehicle systems

Geoffrey A. Hollinger, Bryson R.D. Robertson, Bret Bosma, David Okushemiya, Aidan Kane, Junhui Lou
article en

Abstract

Hardware-in-the-Loop (HIL) offers a promising pathway for evaluating wave energy converter–autonomous underwater vehicle (WEC–AUV) systems in the laboratory, where a mix of laboratory-scale waves and full-scale AUVs present significant challenges for conventional testing approaches. This study aims to develop and validate an HIL testing framework that reproduces wave forces and dock motions for WEC-AUV systems by integrating wave tank experiments with numerical simulations. Core methodologies, including wave distortion, wave prediction, excitation force estimation, and dock motion control, were developed and experimentally validated in the Large Wave Flume at O.H. Hinsdale Wave Research Laboratory. The approach replicated ocean wave forcing by matching water acceleration or velocity amplitudes under inertia- and drag-force-dominated conditions. Wave prediction enabled real-time estimation of excitation force and resulting dock motion. Across the tested regular and irregular waves, the coefficient of determination R 2 ranged from 0.850 to 0.990 for wave prediction and from 0.956 to 0.995 for excitation force estimation. Dock motion control strategies were implemented in the HIL framework to provide improved AUV docking conditions. Overall, this work provided a practical and experimentally validated pathway for advancing wave energy–powered AUV docking systems.

Ocean EngineeringVol. 368
Oregon State University (US), University of Victoria (CA)
U.S. Department of Energy
Affordable and clean energy
Openalex Percentile: Top 16%
Real-time simulation and control systems
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A mixed-scale hardware-in-the-loop testing framework for wave energy converter-autonomous underwater vehicle systems — Geoffrey A. Hollinger, Bryson R.D. Robertson, et al. · Ocean Engineering (2026) | TGRS Research Map | TGRS