Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed Model

Natural wind is stochastic, being characterized by its speed and direction which change randomly and frequently. Because of the certain lag in control systems and the yaw body itself, wind turbines cannot be accurately aligned toward the wind direction when the wind speed and wind direction change...

Full description

Bibliographic Details
Main Authors: Shuting Wan, Lifeng Cheng, Xiaoling Sheng
Format: Article
Language:English
Published: MDPI AG 2015-06-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/8/7/6286
id doaj-083011afd27f473281196fa8dda70d9b
record_format Article
spelling doaj-083011afd27f473281196fa8dda70d9b2020-11-25T01:43:51ZengMDPI AGEnergies1996-10732015-06-01876286630110.3390/en8076286en8076286Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed ModelShuting Wan0Lifeng Cheng1Xiaoling Sheng2School of Energy Power and Mechanical Engineering, North China Electric Power University, Baoding 071003, ChinaSchool of Energy Power and Mechanical Engineering, North China Electric Power University, Baoding 071003, ChinaSchool of Energy Power and Mechanical Engineering, North China Electric Power University, Baoding 071003, ChinaNatural wind is stochastic, being characterized by its speed and direction which change randomly and frequently. Because of the certain lag in control systems and the yaw body itself, wind turbines cannot be accurately aligned toward the wind direction when the wind speed and wind direction change frequently. Thus, wind turbines often suffer from a series of engineering issues during operation, including frequent yaw, vibration overruns and downtime. This paper aims to study the effects of yaw error on wind turbine running characteristics at different wind speeds and control stages by establishing a wind turbine model, yaw error model and the equivalent wind speed model that includes the wind shear and tower shadow effects. Formulas for the relevant effect coefficients Tc, Sc and Pc were derived. The simulation results indicate that the effects of the aerodynamic torque, rotor speed and power output due to yaw error at different running stages are different and that the effect rules for each coefficient are not identical when the yaw error varies. These results may provide theoretical support for optimizing the yaw control strategies for each stage to increase the running stability of wind turbines and the utilization rate of wind energy.http://www.mdpi.com/1996-1073/8/7/6286wind turbineyaw errorrunning characteristicsequivalent wind speed model
collection DOAJ
language English
format Article
sources DOAJ
author Shuting Wan
Lifeng Cheng
Xiaoling Sheng
spellingShingle Shuting Wan
Lifeng Cheng
Xiaoling Sheng
Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed Model
Energies
wind turbine
yaw error
running characteristics
equivalent wind speed model
author_facet Shuting Wan
Lifeng Cheng
Xiaoling Sheng
author_sort Shuting Wan
title Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed Model
title_short Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed Model
title_full Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed Model
title_fullStr Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed Model
title_full_unstemmed Effects of Yaw Error on Wind Turbine Running Characteristics Based on the Equivalent Wind Speed Model
title_sort effects of yaw error on wind turbine running characteristics based on the equivalent wind speed model
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2015-06-01
description Natural wind is stochastic, being characterized by its speed and direction which change randomly and frequently. Because of the certain lag in control systems and the yaw body itself, wind turbines cannot be accurately aligned toward the wind direction when the wind speed and wind direction change frequently. Thus, wind turbines often suffer from a series of engineering issues during operation, including frequent yaw, vibration overruns and downtime. This paper aims to study the effects of yaw error on wind turbine running characteristics at different wind speeds and control stages by establishing a wind turbine model, yaw error model and the equivalent wind speed model that includes the wind shear and tower shadow effects. Formulas for the relevant effect coefficients Tc, Sc and Pc were derived. The simulation results indicate that the effects of the aerodynamic torque, rotor speed and power output due to yaw error at different running stages are different and that the effect rules for each coefficient are not identical when the yaw error varies. These results may provide theoretical support for optimizing the yaw control strategies for each stage to increase the running stability of wind turbines and the utilization rate of wind energy.
topic wind turbine
yaw error
running characteristics
equivalent wind speed model
url http://www.mdpi.com/1996-1073/8/7/6286
work_keys_str_mv AT shutingwan effectsofyawerroronwindturbinerunningcharacteristicsbasedontheequivalentwindspeedmodel
AT lifengcheng effectsofyawerroronwindturbinerunningcharacteristicsbasedontheequivalentwindspeedmodel
AT xiaolingsheng effectsofyawerroronwindturbinerunningcharacteristicsbasedontheequivalentwindspeedmodel
_version_ 1725031280502898688