On the accuracy of BEMT and CFD on the power and trust prediction of tidal turbines

Yabin Liu, Stefano Gambuzza, Riccardo Broglia, Anna M. Young, Edward D. McCarthy, Ignazio Maria Viola

Research output: Chapter or section in a book/report/conference proceedingChapter in a published conference proceeding

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Abstract

We compute the loads on a model-scale tidal turbine with Blade Element Momentum (BEM) theory and Computational Fluid Dynamics (CFD) simulations, and we compare the results with towing tank tests. CFD simulations are wall-resolved, steady, Reynolds-averaged Navier-Stokes simulations with a k − ω SST turbulence model, where only a 120◦ wedge domain with a single blade is resolved in a non-inertial frame of reference. We undertake a detailed uncertainty analysis to identify the sources of error. BEM uncertainty is computed with a Monte-Carlo approach based on the differences in the predictions of CFD and Xfoil for the sectional lift and drag coefficients,while CFD uncertainty is based on the errors due to the finite number of iterations and spatial resolution. The maximum error of CFD (8.0%) with respect to the experimental data is about half of that of BEM (15.5%) for the power (CP ) and the thrust (CT ) coefficients and both errors are within 4.1% for CFD and within 7.2% for BEM around the optimal tip-speed ratio (λ = 6.03). The BEM error is within the uncertainty associated with the imprecise knowledge of the sectional lift and drag coefficients. The sectional forces from CFD and BEM disagree at both the tip and the root, resulting in a substantial BEM underprediction of CP at high λ values (up to 15.5%), yet CT is well predicted (within 2.3%) at every λ. The CFD uncertainty is markedly smaller than the error, which is thus mostly due to a modelling error such as the turbulence model, the neglected effect of the support structure, the free surface, and the imprecise knowledge of the input conditions. Overall these results suggest that CFD provides both a maximum error and uncertainty that are substantially smaller than that of BEM, but both methods suffer from modelling errors that require further investigation.
Original languageEnglish
Title of host publicationProceedings of the European Wave and Tidal Energy Conference (EWTEC)
Subtitle of host publicationTidal Hydrodynamic Modelling
Volume15
DOIs
Publication statusPublished - 2 Sept 2023
Event15th European Wave and Tidal Energy Conference, EWTEC 2023 - Bilbao, Spain
Duration: 3 Sept 20237 Sept 2023

Publication series

NameProceedings of the European Wave and Tidal Energy Conference
PublisherEuropean Wave and Tidal Energy Conference
ISSN (Print)2706-6932

Conference

Conference15th European Wave and Tidal Energy Conference, EWTEC 2023
Country/TerritorySpain
CityBilbao
Period3/09/237/09/23

Bibliographical note

This work was supported by the UK Engineering and Physical Sciences Research Council through the grant ‘MorphingBlades: New-Concept Turbine Blades for Unsteady Load Mitigation’ [EP/V009443/1]

Keywords

  • blade element momentum theory
  • blade-resolved Reynoldsaveraged Navier-Stokes simulations
  • computational fluid dynamics
  • Tidal energy
  • tidal turbine hydrodynamics

ASJC Scopus subject areas

  • Renewable Energy, Sustainability and the Environment
  • Water Science and Technology
  • Energy Engineering and Power Technology
  • Ocean Engineering

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