Transient simulation of an atmospheric boundary layer flow past a heliostat using the Scale-Adaptive Simulation turbulence model

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dc.contributor.author Poulain, P.E.
dc.contributor.author Craig, K.J. (Kenneth)
dc.contributor.author Meyer, Josua P.
dc.date.accessioned 2022-07-13T10:59:06Z
dc.date.available 2022-07-13T10:59:06Z
dc.date.issued 2021-11
dc.description.abstract Heliostat fields are exposed to changing climatic conditions as they are mostly erected in open environments where the wind naturally features a high unsteadiness at low altitude due to the ground effects. Much of the computational fluid dynamics (CFD) content in the open literature is focused on Reynolds–averaged-Navier–Stokes (RANS) simulations, which can only predict mean loads. This paper considers an isolated heliostat in worst-case orientation. The drag force is numerically modelled by means of a Scale-Resolving Simulation (SRS) in ANSYS v19. This paper firstly deals with two different methods that generate perturbations at the inlet boundary: the spectral synthesiser and the vortex method. In an empty domain, an atmospheric boundary layer (ABL) profile is modelled based on a wind tunnel experiment. Secondly, the wind tunnel test of a single heliostat model in upright orientation is replicated, aiming to model the mean and peak drag forces. Applicable for highly separated flows, the Scale-Adaptive Simulation (SAS) turbulence model is employed as it is computationally more affordable than a Detached Eddy Simulation (DES) approach. The latter would require a higher grid resolution and a reduced time step size. The SAS showed little but acceptable decay of the inlet profiles whilst achieving lateral homogeneity. The mean and root-mean-square error of the drag force signal showed a deviation with the experiment of 0.04% and 5.8%, respectively, whereas the error on the peak drag forces was around 18%, possibly mostly due to the under-prediction of the turbulent integral length scale at the model location. en_US
dc.description.department Mechanical and Aeronautical Engineering en_US
dc.description.librarian hj2022 en_US
dc.description.sponsorship The University of Pretoria, South Africa and the South African National Research Foundation. en_US
dc.description.uri http://www.elsevier.com/locate/jweia en_US
dc.identifier.citation Poulain, P., Craig, K.J. & Meyer, J.P. 2021, 'Transient simulation of an atmospheric boundary layer flow past a heliostat using the Scale-Adaptive Simulation turbulence model', Journal of Wind Engineering and Industrial Aerodynamics, vol. 218, art. 104740, pp. 1-14, doi : 10.1016/j.jweia.2021.104740. en_US
dc.identifier.issn 0167-6105
dc.identifier.other 10.1016/j.jweia.2021.104740
dc.identifier.uri https://repository.up.ac.za/handle/2263/86138
dc.language.iso en en_US
dc.publisher Elsevier en_US
dc.rights © 2021 Elsevier Ltd. All rights reserved. Notice : this is the author’s version of a work that was accepted for publication in Journal of Wind Engineering and Industrial Aerodynamics. Changes resulting from the publishing process, such as peer review, editing, corrections, structural formatting, and other quality control mechanisms may not be reflected in this document. A definitive version was subsequently published in Journal of Wind Engineering and Industrial Aerodynamics, vol. 218, art. 104740, pp. 1-14, 2021. doi : 10.1016/j.jweia.2021.104740. en_US
dc.subject Computational fluid dynamics (CFD) en_US
dc.subject Scale-adaptive simulation (SAS) en_US
dc.subject Atmospheric boundary layer (ABL) en_US
dc.subject Heliostat en_US
dc.subject Turbulence power spectrum en_US
dc.title Transient simulation of an atmospheric boundary layer flow past a heliostat using the Scale-Adaptive Simulation turbulence model en_US
dc.type Preprint Article en_US


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