4.7 Article

High-fidelity CFD simulations of two wind turbines in arrays using nonlinear frequency domain solution method

Journal

RENEWABLE ENERGY
Volume 174, Issue -, Pages 984-1005

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.renene.2021.04.067

Keywords

Wind turbines in arrays; High-fidelity CFD; Aerodynamics; Frequency domain method; Rotor-stator interaction; Unsteady Navier-Stokes

Funding

  1. Engineering Physics and Science Research Council of the UK [EPSRC EP/R010633/1]
  2. EPSRC [EP/R010633/1] Funding Source: UKRI

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The aerodynamics of wind turbines in wind farms are greatly affected by the wake of neighboring turbines. Studying the impact of upstream turbines on downstream turbines is crucial for wind farm layout design and optimization. A novel computational method is proposed to simulate two wind turbines in arrays, reducing computational costs while providing accurate results.
Aerodynamics of a wind turbine within windfarms is strongly influenced by the wake of neighbouring turbines. In particular, the performance of a wind turbine can be dramatically reduced depending on its location in the wake region of an upstream turbine. A detailed investigation of the effect of the upstream turbine on the downstream turbine with respect to their distances is essential for the design and optimisation of wind farm layouts. Conventional time domain solution methods, such as Unsteady Reynolds Averaged Navier Stokes (URANS) based Computational Fluid Dynamics (CFD) model of wind turbines in arrays, can provide a detailed analysis of this interaction effect. These methods are, however, impractical due to a high computational cost required for modelling turbines in array configurations. In this paper, a novel modelling and computational method is proposed to simulate two wind turbines in arrays by considering them as a multi-stage turbine. A nonlinear frequency domain solution method is then employed to model flow nonlinearities due to their interactions. The distances between the turbines are varied, and the effects of the upstream wind turbine on the downstream one are thoroughly investigated. Extensive validations of the nonlinear frequency domain solution method against the conventional time domain solution method reveal that the proposed frequency domain solution method provides accurate results while reducing the computational cost by one to two orders of magnitude. (c) 2021 Elsevier Ltd. All rights reserved.

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