Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw Processes

Wind turbines inevitably experience yawed flows, resulting in fluctuations of the angle of attack (AOA) of airfoils, which can considerably impact the aerodynamic characteristics of the turbine blades. In this paper, a horizontal-axis wind turbine (HAWT) was modeled using a structured grid with mult...

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Main Authors: Xiaodong Wang, Zhaoliang Ye, Shun Kang, Hui Hu
Format: Article
Language:English
Published: MDPI AG 2019-08-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/16/3124
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spelling doaj-bc72b3e05ea34cff8023f8ec373796f72020-11-24T21:22:11ZengMDPI AGEnergies1996-10732019-08-011216312410.3390/en12163124en12163124Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw ProcessesXiaodong Wang0Zhaoliang Ye1Shun Kang2Hui Hu3Key Laboratory of Condition Monitoring and Control for Power Plant Equipment, Ministry of Education, North China Electric Power University, Beijing 102206, ChinaKey Laboratory of Condition Monitoring and Control for Power Plant Equipment, Ministry of Education, North China Electric Power University, Beijing 102206, ChinaKey Laboratory of Condition Monitoring and Control for Power Plant Equipment, Ministry of Education, North China Electric Power University, Beijing 102206, ChinaDepartment of Aerospace Engineering, Iowa State University, Ames, IA 50011, USAWind turbines inevitably experience yawed flows, resulting in fluctuations of the angle of attack (AOA) of airfoils, which can considerably impact the aerodynamic characteristics of the turbine blades. In this paper, a horizontal-axis wind turbine (HAWT) was modeled using a structured grid with multiple blocks. Then, the aerodynamic characteristics of the wind turbine were investigated under static and dynamic yawed conditions using the Unsteady Reynolds Averaged Navier-Stokes (URANS) method. In addition, start-stop yawing rotations at two different velocities were studied. The results suggest that AOA fluctuation under yawing conditions is caused by two separate effects: blade advancing & retreating and upwind & downwind yawing. At a positive yaw angle, the blade advancing & retreating effect causes a maximum AOA at an azimuth angle of 0°. Moreover, the effect is more dominant in inboard airfoils compared to outboard airfoils. The upwind & downwind yawing effect occurs when the wind turbine experiences dynamic yawing motion. The effect increases the AOA when the blade is yawing upwind and vice versa. The phenomena become more dominant with the increase of yawing rate. The torque of the blade in the forward yawing condition is much higher than in backward yawing, owing to the reversal of the yaw velocity.https://www.mdpi.com/1996-1073/12/16/3124HAWTaerodynamic characteristicsdynamic yawing processnear wakestart-stop yaw velocity
collection DOAJ
language English
format Article
sources DOAJ
author Xiaodong Wang
Zhaoliang Ye
Shun Kang
Hui Hu
spellingShingle Xiaodong Wang
Zhaoliang Ye
Shun Kang
Hui Hu
Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw Processes
Energies
HAWT
aerodynamic characteristics
dynamic yawing process
near wake
start-stop yaw velocity
author_facet Xiaodong Wang
Zhaoliang Ye
Shun Kang
Hui Hu
author_sort Xiaodong Wang
title Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw Processes
title_short Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw Processes
title_full Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw Processes
title_fullStr Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw Processes
title_full_unstemmed Investigations on the Unsteady Aerodynamic Characteristics of a Horizontal-Axis Wind Turbine during Dynamic Yaw Processes
title_sort investigations on the unsteady aerodynamic characteristics of a horizontal-axis wind turbine during dynamic yaw processes
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-08-01
description Wind turbines inevitably experience yawed flows, resulting in fluctuations of the angle of attack (AOA) of airfoils, which can considerably impact the aerodynamic characteristics of the turbine blades. In this paper, a horizontal-axis wind turbine (HAWT) was modeled using a structured grid with multiple blocks. Then, the aerodynamic characteristics of the wind turbine were investigated under static and dynamic yawed conditions using the Unsteady Reynolds Averaged Navier-Stokes (URANS) method. In addition, start-stop yawing rotations at two different velocities were studied. The results suggest that AOA fluctuation under yawing conditions is caused by two separate effects: blade advancing & retreating and upwind & downwind yawing. At a positive yaw angle, the blade advancing & retreating effect causes a maximum AOA at an azimuth angle of 0°. Moreover, the effect is more dominant in inboard airfoils compared to outboard airfoils. The upwind & downwind yawing effect occurs when the wind turbine experiences dynamic yawing motion. The effect increases the AOA when the blade is yawing upwind and vice versa. The phenomena become more dominant with the increase of yawing rate. The torque of the blade in the forward yawing condition is much higher than in backward yawing, owing to the reversal of the yaw velocity.
topic HAWT
aerodynamic characteristics
dynamic yawing process
near wake
start-stop yaw velocity
url https://www.mdpi.com/1996-1073/12/16/3124
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AT shunkang investigationsontheunsteadyaerodynamiccharacteristicsofahorizontalaxiswindturbineduringdynamicyawprocesses
AT huihu investigationsontheunsteadyaerodynamiccharacteristicsofahorizontalaxiswindturbineduringdynamicyawprocesses
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