Sloshing dynamics of liquid tank with built-in buoys for wave energy harvesting
Chongwei Zhang, Zhenyu Ding, Lifen Chen, Dezhi Ning

TL;DR
This paper introduces a novel liquid tank design with built-in buoys for wave energy harvesting, combining nonlinear modeling, experimental validation, and optimization of power generation efficiency.
Contribution
It presents the S-WEC design, a fully nonlinear numerical model, and a practical approach for optimizing PTO damping for wave energy conversion.
Findings
Optimal PTO damping maximizes power output.
Viscous damping strength matches experimental data.
Buoy geometry influences energy harvesting efficiency.
Abstract
This paper proposes a novel design of liquid tank with built-in buoys for wave energy harvesting, named the 'sloshing wave energy converter (S-WEC)'. When the tank is oscillated by external loads (such as ocean waves), internal liquid sloshing is activated, and the mechanical energy of sloshing waves can be absorbed by the power take-off (PTO) system attached to these buoys. A fully-nonlinear numerical model is established based on the boundary element method for a systematic investigation on dynamic properties of the proposed S-WEC. A motion decoupling algorithm based on auxiliary functions is developed to solve the nonlinear interaction of sloshing waves and floating buoys in the tank. An artificial damping model is introduced to reflect viscous effects of the sloshing liquid. Physical experiments are carried out on a scaled S-WEC model to validate the mathematical and numerical…
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