Author
Listed:
- Bai, Haomeng
- Stansby, Peter
- Li, Gangqiang
- Wang, Peng
- Li, Guang
Abstract
Onshore wave energy converters (WECs) benefit from lower cost of installation and maintenance due to shared coastal infrastructure and ease of accessibility as compared with offshore WECs. However, it is challenging to design onshore WECs to operate optimally because of the complex hydrodynamic reflection effects from the shoreline structures they are attached to and varying incoming wave directions. This paper develops control-oriented state–space models for a single-float onshore WEC and an onshore five-float WEC array based on the device supplied by Eco Wave Power Ltd. (EWP). The models can capture wall-induced reflection effects, and the array model additionally represents inter-float hydrodynamic coupling. On top of these models, a linear non-causal optimal control (LNOC) framework is applied for both configurations. The controller integrates a Random Walk Kalman filter for wave excitation force estimation and a short-horizon Auto-Regressive (AR) wave predictor. The overall control system is computationally efficient for real-time implementation. Simulation studies show that the proposed LNOC strategy with a 300th-order AR model and a Kalman observer improves mean absorbed energy relative to a well-tuned passive damping controller by approximately 40%–72.2% for a single-float device and 18.9%–94.7% for the five-float array across a range of sea states. The influence of incoming wave directions is investigated comprehensively revealing a distinctive directional characteristic in the onshore setting: A single WEC exhibits only a minor dependence on incidence angle, whereas the array displays a much more pronounced directional sensitivity and maximum absorption occurs when incoming wave direction is parallel to the coastline.
Suggested Citation
Bai, Haomeng & Stansby, Peter & Li, Gangqiang & Wang, Peng & Li, Guang, 2026.
"Self-contained linear non-causal optimal control of onshore wave energy converters,"
Energy, Elsevier, vol. 360(C).
Handle:
RePEc:eee:energy:v:360:y:2026:i:c:s0360544226016245
DOI: 10.1016/j.energy.2026.141518
Download full text from publisher
As the access to this document is restricted, you may want to
for a different version of it.
Corrections
All material on this site has been provided by the respective publishers and authors. You can help correct errors and omissions. When requesting a correction, please mention this item's handle: RePEc:eee:energy:v:360:y:2026:i:c:s0360544226016245. See general information about how to correct material in RePEc.
If you have authored this item and are not yet registered with RePEc, we encourage you to do it here. This allows to link your profile to this item. It also allows you to accept potential citations to this item that we are uncertain about.
We have no bibliographic references for this item. You can help adding them by using this form .
If you know of missing items citing this one, you can help us creating those links by adding the relevant references in the same way as above, for each refering item. If you are a registered author of this item, you may also want to check the "citations" tab in your RePEc Author Service profile, as there may be some citations waiting for confirmation.
For technical questions regarding this item, or to correct its authors, title, abstract, bibliographic or download information, contact: Catherine Liu (email available below). General contact details of provider: http://www.journals.elsevier.com/energy .
Please note that corrections may take a couple of weeks to filter through
the various RePEc services.