Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External Flows

Numerical simulations are crucial for fast and accurate estimations of the flow characteristics in many engineering applications such as atmospheric boundary layers around buildings, external aerodynamics around vehicles, and pollutant dispersion. In the simulation of flow over urban-like obstacles,...

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Main Authors: Amne ElCheikh, Michel ElKhoury
Format: Article
Language:English
Published: MDPI AG 2019-08-01
Series:Aerospace
Subjects:
LES
Online Access:https://www.mdpi.com/2226-4310/6/8/86
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spelling doaj-08ed360853f446d7b87d02a8aa9c2ef02020-11-24T21:24:08ZengMDPI AGAerospace2226-43102019-08-01688610.3390/aerospace6080086aerospace6080086Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External FlowsAmne ElCheikh0Michel ElKhoury1Department of Industrial and Mechanical Engineering, Lebanese American University, Byblos, LebanonDepartment of Industrial and Mechanical Engineering, Lebanese American University, Byblos, LebanonNumerical simulations are crucial for fast and accurate estimations of the flow characteristics in many engineering applications such as atmospheric boundary layers around buildings, external aerodynamics around vehicles, and pollutant dispersion. In the simulation of flow over urban-like obstacles, it is crucial to accurately resolve the flow characteristics with reasonable computational cost. Therefore, Large Eddy Simulations on non-uniform grids are usually employed. However, an undesirable accumulation of energy at grid-refinement interfaces was observed in previous studies using non-uniform grids. This phenomenon induced oscillations in the spanwise velocity component, mainly on fine-to-coarse grid interfaces. In this study, the two challenging test cases of flow over urban-like cubes and flow over a 3-D circular cylinder were simulated using three different scale-resolving turbulence models. Simulations were performed on uniform coarse and fine grids on one hand, and a non-uniform grid on the other, to assess the effect of mesh density and mesh interfaces on the models’ performance. Overall, the proposed One-Equation Scale-Adaptive Simulation (One-Equation SAS) showed the least deviation from the experimental results in both tested cases and on all grid sizes and types when compared to the Shear Stress Transport-Improved Delayed Detached Eddy Simulation (IDDES) and the Algebraic Wall-Modeled Large Eddy Simulation (WMLES).https://www.mdpi.com/2226-4310/6/8/86turbulence modelingRANSLESurban environmentCFD simulation scale resolving modelsexternal flowsgrid refinement
collection DOAJ
language English
format Article
sources DOAJ
author Amne ElCheikh
Michel ElKhoury
spellingShingle Amne ElCheikh
Michel ElKhoury
Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External Flows
Aerospace
turbulence modeling
RANS
LES
urban environment
CFD simulation scale resolving models
external flows
grid refinement
author_facet Amne ElCheikh
Michel ElKhoury
author_sort Amne ElCheikh
title Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External Flows
title_short Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External Flows
title_full Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External Flows
title_fullStr Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External Flows
title_full_unstemmed Effect of Local Grid Refinement on Performance of Scale-Resolving Models for Simulation of Complex External Flows
title_sort effect of local grid refinement on performance of scale-resolving models for simulation of complex external flows
publisher MDPI AG
series Aerospace
issn 2226-4310
publishDate 2019-08-01
description Numerical simulations are crucial for fast and accurate estimations of the flow characteristics in many engineering applications such as atmospheric boundary layers around buildings, external aerodynamics around vehicles, and pollutant dispersion. In the simulation of flow over urban-like obstacles, it is crucial to accurately resolve the flow characteristics with reasonable computational cost. Therefore, Large Eddy Simulations on non-uniform grids are usually employed. However, an undesirable accumulation of energy at grid-refinement interfaces was observed in previous studies using non-uniform grids. This phenomenon induced oscillations in the spanwise velocity component, mainly on fine-to-coarse grid interfaces. In this study, the two challenging test cases of flow over urban-like cubes and flow over a 3-D circular cylinder were simulated using three different scale-resolving turbulence models. Simulations were performed on uniform coarse and fine grids on one hand, and a non-uniform grid on the other, to assess the effect of mesh density and mesh interfaces on the models’ performance. Overall, the proposed One-Equation Scale-Adaptive Simulation (One-Equation SAS) showed the least deviation from the experimental results in both tested cases and on all grid sizes and types when compared to the Shear Stress Transport-Improved Delayed Detached Eddy Simulation (IDDES) and the Algebraic Wall-Modeled Large Eddy Simulation (WMLES).
topic turbulence modeling
RANS
LES
urban environment
CFD simulation scale resolving models
external flows
grid refinement
url https://www.mdpi.com/2226-4310/6/8/86
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