Phase-tuned wave focusing by dual-parabolic breakwaters with a submerged secondary element

Integrating wave energy converters with coastal breakwaters can reduce infrastructure costs and improve the use of nearshore wave energy. This study proposes a dual-parabolic breakwater confruration, coupling a surface-piercing primary parabolic concentrator with a submerged secondary parabolic structure, to realise phase-modulated wave focusing. A second-order three-dimensional higher-order boundary element model is used, with its mesh convergence verified numerically and the single-breakwater baseline validated against wave-basin experiments. The secondary wall produces delayed scattered waves that interact with the primary focused field. Consequently, focal amplification depends on multi-path superposition and exhibits clear frequency selectivity. Varying the distance between the two focal points alternates constructive and destructive interference and shifts the optimal confruration predictably. The secondary-wall chord length also has a non-monotonic effect because it changes the effective phase of the scattered waves. These findings establish a phase-based mechanism for tuning dual-breakwater focusing and provide guidance for integrating wave energy systems with coastal structures. Xiangyu Zhang and colleagues investigate phase-tuned wave focusing by a dual-parabolic breakwater using a second-order three-dimensional boundary-element model. The submerged secondary breakwater generates delayed scattered waves whose phase can be tuned to enhance focal amplification across target wave conditions.

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Publication Details

Journal
Communications Engineering
Published
2026-09-14
DOI
https://doi.org/10.1038/s44172-026-00777-3
Primary Topic
Coastal and Marine Dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Phase-tuned wave focusing by dual-parabolic breakwaters with a submerged secondary element

Haoyu Ding, Robert Mayon, Dezhi Ning, Xiangyu Zhang
Communications Engineering
Coastal and Marine Dynamics
article

Phase-tuned wave focusing by dual-parabolic breakwaters with a submerged secondary element

Haoyu Ding, Robert Mayon, Dezhi Ning, Xiangyu Zhang
article en

Abstract

Integrating wave energy converters with coastal breakwaters can reduce infrastructure costs and improve the use of nearshore wave energy. This study proposes a dual-parabolic breakwater confruration, coupling a surface-piercing primary parabolic concentrator with a submerged secondary parabolic structure, to realise phase-modulated wave focusing. A second-order three-dimensional higher-order boundary element model is used, with its mesh convergence verified numerically and the single-breakwater baseline validated against wave-basin experiments. The secondary wall produces delayed scattered waves that interact with the primary focused field. Consequently, focal amplification depends on multi-path superposition and exhibits clear frequency selectivity. Varying the distance between the two focal points alternates constructive and destructive interference and shifts the optimal confruration predictably. The secondary-wall chord length also has a non-monotonic effect because it changes the effective phase of the scattered waves. These findings establish a phase-based mechanism for tuning dual-breakwater focusing and provide guidance for integrating wave energy systems with coastal structures. Xiangyu Zhang and colleagues investigate phase-tuned wave focusing by a dual-parabolic breakwater using a second-order three-dimensional boundary-element model. The submerged secondary breakwater generates delayed scattered waves whose phase can be tuned to enhance focal amplification across target wave conditions.

Communications Engineering
Dalian University of Technology (CN), University of Bath (GB)
National Natural Science Foundation of China
Clean water and sanitation
Openalex Percentile: Top 13%
Coastal and Marine Dynamics
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Phase-tuned wave focusing by dual-parabolic breakwaters with a submerged secondary element — Haoyu Ding, Robert Mayon, et al. · Communications Engineering (2026) | TGRS Research Map | TGRS