Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Statistical Analysis on The Near-Wake Region of RANS Turbulence Closure Models for Vertical Axis Tidal Turbine

View through CrossRef
The flow field in the near wake region (up to six turbine diameters downstream) of a tidal current turbine is strongly driven by the combined wake of the device support structure and the rotor. Accurate characterisation of the near-wake region is important, but it is dominated by highly turbulent, slow-moving fluid. At present, limited number of research has been undertaken into the characterisation of the near-wake region for a Vertical Axis Tidal Turbine (VATT) device using the Reynolds Averaged Navier Stokes (RANS) model in the shallow water environment of Malaysia. This paper presents a comprehensive statistical analysis using the Mean Absolute Error (MEA), Mean Squared Error (MSE) and Root Mean Squared Error (RMSE) on the near-wake region for shallow water application by comparing numerical solutions (i.e., different types of RANS turbulence models using Ansys Fluent) with published experimental data. Seven RANS turbulence models with a single VATT, represented by using a cylindrical object, were employed in the preliminary study. The statistical analysis performed in this study is essential in exploring and giving a detailed understanding on the most suitable RANS turbulence model to be improved, specifically on its near-wake region. In this study, the near wake region is defined as D ≤ 6, where D is the device diameter. The analysis shows that the RANS numerical solutions are unable to accurately replicate the near-wake region based on large statistical errors computed. The average RMSE of near-wake region at z/D = [2, 3, 4, 6] are 0.5864, 0.4127, 0.4344 and 0.3577 while the average RMSE at far-wake region z/D = [8, 12] are 0.2269 and 0.1590, where z is the distance from the cylindrical object along the length of domain. The statistical error values are found to decrease with increasing downstream distance from a cylindrical object. Notably, the standard k–ε and realizable k–ε models are the two best turbulent models representing the near-wake region in RANS modelling, yielding the lowest statistical errors (RMSE at z/D = [2, 3, 4, 6] are 0.5666, 0.4020, 0.4113 and 0.3455) among the tested parameters
Title: Statistical Analysis on The Near-Wake Region of RANS Turbulence Closure Models for Vertical Axis Tidal Turbine
Description:
The flow field in the near wake region (up to six turbine diameters downstream) of a tidal current turbine is strongly driven by the combined wake of the device support structure and the rotor.
Accurate characterisation of the near-wake region is important, but it is dominated by highly turbulent, slow-moving fluid.
At present, limited number of research has been undertaken into the characterisation of the near-wake region for a Vertical Axis Tidal Turbine (VATT) device using the Reynolds Averaged Navier Stokes (RANS) model in the shallow water environment of Malaysia.
This paper presents a comprehensive statistical analysis using the Mean Absolute Error (MEA), Mean Squared Error (MSE) and Root Mean Squared Error (RMSE) on the near-wake region for shallow water application by comparing numerical solutions (i.
e.
, different types of RANS turbulence models using Ansys Fluent) with published experimental data.
Seven RANS turbulence models with a single VATT, represented by using a cylindrical object, were employed in the preliminary study.
The statistical analysis performed in this study is essential in exploring and giving a detailed understanding on the most suitable RANS turbulence model to be improved, specifically on its near-wake region.
In this study, the near wake region is defined as D ≤ 6, where D is the device diameter.
The analysis shows that the RANS numerical solutions are unable to accurately replicate the near-wake region based on large statistical errors computed.
The average RMSE of near-wake region at z/D = [2, 3, 4, 6] are 0.
5864, 0.
4127, 0.
4344 and 0.
3577 while the average RMSE at far-wake region z/D = [8, 12] are 0.
2269 and 0.
1590, where z is the distance from the cylindrical object along the length of domain.
The statistical error values are found to decrease with increasing downstream distance from a cylindrical object.
Notably, the standard k–ε and realizable k–ε models are the two best turbulent models representing the near-wake region in RANS modelling, yielding the lowest statistical errors (RMSE at z/D = [2, 3, 4, 6] are 0.
5666, 0.
4020, 0.
4113 and 0.
3455) among the tested parameters.

Related Results

Optimal tuning of engineering wake models through LiDAR measurements
Optimal tuning of engineering wake models through LiDAR measurements
Abstract. Engineering wake models provide the invaluable advantage to predict wind turbine wakes, power capture, and, in turn, annual energy production for an entire wind farm with...
Wake Alleviating Devices for Offshore Wind Turbines
Wake Alleviating Devices for Offshore Wind Turbines
The wake behind an offshore wind turbine can persist for several turbine diameters, so decreasing the space between wind turbines in an array leads to strong wake-turbine interacti...
Effect of Blade Gap Ratio on Turbine Performance in Drag-Based Vertical-Axis Wind Turbines
Effect of Blade Gap Ratio on Turbine Performance in Drag-Based Vertical-Axis Wind Turbines
The aim of this study was to improve the performances of three-bladed vertical-axis wind turbines with gap distance. For this purpose, turbine design conditions such as a gap ratio...
Sediment Dynamics in Estuarine Tidal Flats in Transition
Sediment Dynamics in Estuarine Tidal Flats in Transition
Intertidal ecosystems are at the boundary between land and sea, ranging from seagrass meadows, mangroves, and salt marshes to tidal flats. These habitats offer essential ecosystem ...
Numerical Simulation of Large Scale Wind Turbine Wake and the Influence on Vibration of Downstream Wind Turbine
Numerical Simulation of Large Scale Wind Turbine Wake and the Influence on Vibration of Downstream Wind Turbine
In order to investigate the wake evolution law of large scale horizontal axis wind turbine and its influence on vibration of downstream wind turbine, large eddy simulation method h...
Numerical Analysis of Wake Interaction of Darrieus Tidal Turbine in Shallow Water Application
Numerical Analysis of Wake Interaction of Darrieus Tidal Turbine in Shallow Water Application
Malaysia is rich in natural resources including coal and fossil fuels. These natural resources, however, will diminish and pollute the ecosystem. Thus, researchers have proposed th...
Wind tunnel study on power output and yaw moments for two yaw-controlled model wind turbines
Wind tunnel study on power output and yaw moments for two yaw-controlled model wind turbines
Abstract. In this experimental wind tunnel study the effects of intentional yaw misalignment on the power production and loads of a downstream turbine are investigated for full and...

Back to Top