Space--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in Time

This thesis is on the space--time variational multiscale (ST-VMS) computation of wind-turbine rotor and tower aerodynamics. The rotor geometry is that of the NREL 5MW offshore baseline wind turbine. We compute with a given wind speed and a specified rotor speed. The computation is challenging becau...

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Main Author: McIntyre, Spenser
Other Authors: Tezduyar, Tayfun E.
Format: Others
Language:English
Published: 2013
Subjects:
Online Access:http://hdl.handle.net/1911/72005
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spelling ndltd-RICE-oai-scholarship.rice.edu-1911-720052013-09-18T03:28:45ZSpace--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in TimeMcIntyre, SpenserSpace--time VMS methodDSD/SST-VMSTWind-turbine rotor and tower aerodynamicsMesh motionRemeshingTemporal NURBS functionsST/NURBS Mesh Update MethodSTNMUMThis thesis is on the space--time variational multiscale (ST-VMS) computation of wind-turbine rotor and tower aerodynamics. The rotor geometry is that of the NREL 5MW offshore baseline wind turbine. We compute with a given wind speed and a specified rotor speed. The computation is challenging because of the large Reynolds numbers and rotating turbulent flows, and computing the correct torque requires an accurate and meticulous numerical approach. The presence of the tower increases the computational challenge because of the fast, rotational relative motion between the rotor and tower. The ST-VMS method is the residual-based VMS version of the Deforming-Spatial-Domain/Stabilized ST (DSD/SST) method, and is also called ``DSD/SST-VMST'' method (i.e., the version with the VMS turbulence model). In calculating the stabilization parameters embedded in the method, we are using a new element length definition for the diffusion-dominated limit. The DSD/SST method, which was introduced as a general-purpose moving-mesh method for computation of flows with moving interfaces, requires a mesh update method. Mesh update typically consists of moving the mesh for as long as possible and remeshing as needed. In the computations reported here, NURBS basis functions are used for the temporal representation of the rotor motion, enabling us to represent the circular paths associated with that motion exactly and specify a constant angular velocity corresponding to the invariant speeds along those paths. In addition, temporal NURBS basis functions are used in representation of the motion and deformation of the volume meshes computed and also in remeshing. We name this ``ST/NURBS Mesh Update Method (STNMUM).'' The STNMUM increases computational efficiency in terms of computer time and storage, and computational flexibility in terms of being able to change the time-step size of the computation. We use layers of thin elements near the blade surfaces, which undergo rigid-body motion with the rotor. We compare the results from computations with and without tower, and we also compare using NURBS and linear finite element basis functions in temporal representation of the mesh motion.Tezduyar, Tayfun E.2013-09-16T15:57:36Z2013-09-16T15:57:49Z2013-09-16T15:57:36Z2013-09-16T15:57:49Z2013-052013-09-16May 20132013-09-16T15:57:49Zthesistextapplication/pdfhttp://hdl.handle.net/1911/72005123456789/ETD-2013-05-565eng
collection NDLTD
language English
format Others
sources NDLTD
topic Space--time VMS method
DSD/SST-VMST
Wind-turbine rotor and tower aerodynamics
Mesh motion
Remeshing
Temporal NURBS functions
ST/NURBS Mesh Update Method
STNMUM
spellingShingle Space--time VMS method
DSD/SST-VMST
Wind-turbine rotor and tower aerodynamics
Mesh motion
Remeshing
Temporal NURBS functions
ST/NURBS Mesh Update Method
STNMUM
McIntyre, Spenser
Space--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in Time
description This thesis is on the space--time variational multiscale (ST-VMS) computation of wind-turbine rotor and tower aerodynamics. The rotor geometry is that of the NREL 5MW offshore baseline wind turbine. We compute with a given wind speed and a specified rotor speed. The computation is challenging because of the large Reynolds numbers and rotating turbulent flows, and computing the correct torque requires an accurate and meticulous numerical approach. The presence of the tower increases the computational challenge because of the fast, rotational relative motion between the rotor and tower. The ST-VMS method is the residual-based VMS version of the Deforming-Spatial-Domain/Stabilized ST (DSD/SST) method, and is also called ``DSD/SST-VMST'' method (i.e., the version with the VMS turbulence model). In calculating the stabilization parameters embedded in the method, we are using a new element length definition for the diffusion-dominated limit. The DSD/SST method, which was introduced as a general-purpose moving-mesh method for computation of flows with moving interfaces, requires a mesh update method. Mesh update typically consists of moving the mesh for as long as possible and remeshing as needed. In the computations reported here, NURBS basis functions are used for the temporal representation of the rotor motion, enabling us to represent the circular paths associated with that motion exactly and specify a constant angular velocity corresponding to the invariant speeds along those paths. In addition, temporal NURBS basis functions are used in representation of the motion and deformation of the volume meshes computed and also in remeshing. We name this ``ST/NURBS Mesh Update Method (STNMUM).'' The STNMUM increases computational efficiency in terms of computer time and storage, and computational flexibility in terms of being able to change the time-step size of the computation. We use layers of thin elements near the blade surfaces, which undergo rigid-body motion with the rotor. We compare the results from computations with and without tower, and we also compare using NURBS and linear finite element basis functions in temporal representation of the mesh motion.
author2 Tezduyar, Tayfun E.
author_facet Tezduyar, Tayfun E.
McIntyre, Spenser
author McIntyre, Spenser
author_sort McIntyre, Spenser
title Space--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in Time
title_short Space--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in Time
title_full Space--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in Time
title_fullStr Space--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in Time
title_full_unstemmed Space--Time Computation of Wind-Turbine Aerodynamics With Higher-Order Functions in Time
title_sort space--time computation of wind-turbine aerodynamics with higher-order functions in time
publishDate 2013
url http://hdl.handle.net/1911/72005
work_keys_str_mv AT mcintyrespenser spacetimecomputationofwindturbineaerodynamicswithhigherorderfunctionsintime
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