Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRF

LiDAR-based wind speed measurements have seen a significant increase in interest in wind energy. However, reconstruction of wind speed vector from a LiDAR-measured radial wind speed is still a challenge. Furthermore, for extensive application of LiDAR technology, it can be used as a means to validat...

Full description

Bibliographic Details
Published in:Atmosphere
Main Authors: Jay Prakash Goit, Atsushi Yamaguchi, Takeshi Ishihara
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Subjects:
Online Access:https://www.mdpi.com/2073-4433/11/5/442
_version_ 1851902058471358464
author Jay Prakash Goit
Atsushi Yamaguchi
Takeshi Ishihara
author_facet Jay Prakash Goit
Atsushi Yamaguchi
Takeshi Ishihara
author_sort Jay Prakash Goit
collection DOAJ
container_title Atmosphere
description LiDAR-based wind speed measurements have seen a significant increase in interest in wind energy. However, reconstruction of wind speed vector from a LiDAR-measured radial wind speed is still a challenge. Furthermore, for extensive application of LiDAR technology, it can be used as a means to validate simulation and analytical models. To that end, this study employed scanning Doppler LiDAR for assessment of wind fields at an offshore site and compared Weather Research and Forecasting (WRF)-based mesoscale simulations and several wake models with the measurements. Firstly, the effect of carrier-to-noise-ratio (CNR) and data availability on the quality of scanning LiDAR measurements was evaluated. Analysis of vertical profiles show that the average wind speed is higher for wind blowing from the sea than that blowing from the land. Furthermore, profiles obtained from the WRF simulation also show a similar tendency in the LiDAR measurements in general, though it overestimates the wind speeds at higher altitudes. A method for reconstruction of wind fields from plan-position indicator (PPI) and range height indicator (RHI) scans of LiDAR-measured line of sight velocities was then proposed and first used to investigate the effect of coastal terrain. An internal boundary layer with strong shear could be observed to develop from the coastline. Finally, the flow field around wind turbine was measured using PPI scan and used to validate wake models.
format Article
id doaj-art-2cb5e47f68e549f3a1552f74aa97fffd
institution Directory of Open Access Journals
issn 2073-4433
language English
publishDate 2020-04-01
publisher MDPI AG
record_format Article
spelling doaj-art-2cb5e47f68e549f3a1552f74aa97fffd2025-08-19T22:05:28ZengMDPI AGAtmosphere2073-44332020-04-0111544210.3390/atmos11050442Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRFJay Prakash Goit0Atsushi Yamaguchi1Takeshi Ishihara2Department of Civil Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, JapanDepartment of Civil Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, JapanDepartment of Civil Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, JapanLiDAR-based wind speed measurements have seen a significant increase in interest in wind energy. However, reconstruction of wind speed vector from a LiDAR-measured radial wind speed is still a challenge. Furthermore, for extensive application of LiDAR technology, it can be used as a means to validate simulation and analytical models. To that end, this study employed scanning Doppler LiDAR for assessment of wind fields at an offshore site and compared Weather Research and Forecasting (WRF)-based mesoscale simulations and several wake models with the measurements. Firstly, the effect of carrier-to-noise-ratio (CNR) and data availability on the quality of scanning LiDAR measurements was evaluated. Analysis of vertical profiles show that the average wind speed is higher for wind blowing from the sea than that blowing from the land. Furthermore, profiles obtained from the WRF simulation also show a similar tendency in the LiDAR measurements in general, though it overestimates the wind speeds at higher altitudes. A method for reconstruction of wind fields from plan-position indicator (PPI) and range height indicator (RHI) scans of LiDAR-measured line of sight velocities was then proposed and first used to investigate the effect of coastal terrain. An internal boundary layer with strong shear could be observed to develop from the coastline. Finally, the flow field around wind turbine was measured using PPI scan and used to validate wake models.https://www.mdpi.com/2073-4433/11/5/442scanning Doppler LiDARWRFwind field measurementatmospheric boundary layerinternal boundary layerwind turbine wake
spellingShingle Jay Prakash Goit
Atsushi Yamaguchi
Takeshi Ishihara
Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRF
scanning Doppler LiDAR
WRF
wind field measurement
atmospheric boundary layer
internal boundary layer
wind turbine wake
title Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRF
title_full Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRF
title_fullStr Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRF
title_full_unstemmed Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRF
title_short Measurement and Prediction of Wind Fields at an Offshore Site by Scanning Doppler LiDAR and WRF
title_sort measurement and prediction of wind fields at an offshore site by scanning doppler lidar and wrf
topic scanning Doppler LiDAR
WRF
wind field measurement
atmospheric boundary layer
internal boundary layer
wind turbine wake
url https://www.mdpi.com/2073-4433/11/5/442
work_keys_str_mv AT jayprakashgoit measurementandpredictionofwindfieldsatanoffshoresitebyscanningdopplerlidarandwrf
AT atsushiyamaguchi measurementandpredictionofwindfieldsatanoffshoresitebyscanningdopplerlidarandwrf
AT takeshiishihara measurementandpredictionofwindfieldsatanoffshoresitebyscanningdopplerlidarandwrf