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May 11, 2026Journal of Fluids and Structures2 citationsOpen Access

Reductions in current and wave-driven flows in jacket structures: A numerical investigation

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AAAidan J. ArcherPTPaul H. TaylorHWHugh Wolgamot

Key Points

  • The aim is to understand wave-current blockage effects in offshore jacket structures through simulations.
  • Conducted computational fluid dynamics simulations of offshore jacket structures under wave-current conditions.
  • Validated porous block representation by reproducing measured force time histories in laboratory experiments.
  • Estimated reduced average current speeds using force time histories and flow kinematics analysis.
  • Average current speeds within jackets were reduced to as low as 33% of undisturbed current under combined loading.
  • Significant reductions in wave-driven horizontal motions were observed within jackets, challenging common assumptions.

Abstract

This study investigates the interaction between large waves, in-line currents, and offshore jacket structures using computational fluid dynamics simulations. The objective is to improve understanding of wave-current blockage, where local current speeds are reduced due to the presence of the jacket acting as an obstacle array. The simulations reproduced the laboratory experiments of Archer et al. (2025), with the jackets represented as porous blocks characterised by uniformly-distributed hydrodynamic area for Morison drag and volume for inertia forces. The porous representation was validated by accurately reproducing measured force time histories across a wide range of wave-current conditions. Reduced average current speeds within the jackets were estimated independently by both inferring currents from force time histories, using analytical amplitude-scaling arguments derived from Archer et al. (2025) , and by averaging simulated flow kinematics. The two methods produced consistent results, showing that average current speeds within the jackets under combined wave-current loading were reduced to as low as 33 % of the undisturbed current, substantially lower than for current-only cases. Analysis of the simulated kinematics further revealed significant local reductions of wave-driven horizontal motions within jackets, representing a novel insight that challenges the common assumption that wave kinematics remain unaffected. These findings highlight the potential for improved force prediction and hence cost reductions in offshore wind jacket foundations.

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Cite This Study

Archer et al. (2026) studied this question.

synapsesocial.com/papers/6a0171983a9f334c28271c49https://doi.org/10.1016/j.jfluidstructs.2026.104598
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Hydrodynamics around a jacket-type foundation structure in steady current: A combined experimental and numerical study2024 · 5 citations
  2. 2Hydrodynamic Forces on a Jacket Based on 3d Focused Wave Simulated With OceanWave3D2025
  3. 3The Influence of Jacket Orientation on Integral Horizontal Forces For a Large 3-Legged Jacket Under Collinear Wave-Current Impact2024
  4. 4Numerical Simulation of Flow Field around Jacket Foundations on Flat-Bed and Equilibrium Scour Bathymetry2024
  5. 5Numerical Study on the Hydrodynamic Performance of Offshore Wind Turbine Jacket Foundation Under Extreme Wave–Current: A Case Study2025 · 2 citations