High Temporal Resolution Refractivity Retrieval from Radar Phase Measurements

Knowledge of the spatial and temporal variability of near-surface water vapor is of great importance to successfully model reliable radio communications systems and forecast atmospheric phenomena such as convective initiation and boundary layer processes. However, most current methods to measure atm...

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Main Authors: Rubén Nocelo López, Verónica Santalla del Río
Format: Article
Language:English
Published: MDPI AG 2018-06-01
Series:Remote Sensing
Subjects:
Online Access:http://www.mdpi.com/2072-4292/10/6/896
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spelling doaj-776d828fd9514e02a65832387500c4e42020-11-25T01:41:03ZengMDPI AGRemote Sensing2072-42922018-06-0110689610.3390/rs10060896rs10060896High Temporal Resolution Refractivity Retrieval from Radar Phase MeasurementsRubén Nocelo López0Verónica Santalla del Río1Signal Theory and Communications Department, University of Vigo, 36310 Vigo, SpainSignal Theory and Communications Department, University of Vigo, 36310 Vigo, SpainKnowledge of the spatial and temporal variability of near-surface water vapor is of great importance to successfully model reliable radio communications systems and forecast atmospheric phenomena such as convective initiation and boundary layer processes. However, most current methods to measure atmospheric moisture variations hardly provide the temporal and spatial resolutions required for detection of such atmospheric processes. Recently, considering the high correlation between refractivity variations and water vapor pressure variations at warm temperatures, and the good temporal and spatial resolution that weather radars provide, the measurement of the refractivity with radar became of interest. Firstly, it was proposed to estimate refractivity variations from radar phase measurements of ground-based stationary targets returns. For that, it was considered that the backscattering from ground targets is stationary and the vertical gradient of the refractivity could be neglected. Initial experiments showed good results over flat terrain when the radar and target heights are similar. However, the need to consider the non-zero vertical gradient of the refractivity over hilly terrain is clear. Up to date, the methods proposed consider previous estimation of the refractivity gradient in order to correct the measured phases before the refractivity estimation. In this paper, joint estimation of the refractivity variations at the radar height and the refractivity vertical gradient variations using scan-to-scan phase measurement variations is proposed. To reduce the noisiness of the estimates, a least squares method is used. Importantly, to apply this algorithm, it is not necessary to modify the radar scanning mode. For the purpose of this study, radar data obtained during the Refractivity Experiment for H 2 O Research and Collaborative Operational Technology Transfer (REFRACTT_2006), held in northeastern Colorado (USA), are used. The refractivity estimates obtained show a good performance of the algorithm proposed compared to the refractivity derived from two automatic weather stations located close to the radar, demonstrating the possibility of radar based refractivity estimation in hilly terrain and non-homogeneous atmosphere with high spatial resolution.http://www.mdpi.com/2072-4292/10/6/896atmosphere remote sensingatmospheric refractivityweather radarground clutterelectromagnetic wave propagationparabolic wave equation
collection DOAJ
language English
format Article
sources DOAJ
author Rubén Nocelo López
Verónica Santalla del Río
spellingShingle Rubén Nocelo López
Verónica Santalla del Río
High Temporal Resolution Refractivity Retrieval from Radar Phase Measurements
Remote Sensing
atmosphere remote sensing
atmospheric refractivity
weather radar
ground clutter
electromagnetic wave propagation
parabolic wave equation
author_facet Rubén Nocelo López
Verónica Santalla del Río
author_sort Rubén Nocelo López
title High Temporal Resolution Refractivity Retrieval from Radar Phase Measurements
title_short High Temporal Resolution Refractivity Retrieval from Radar Phase Measurements
title_full High Temporal Resolution Refractivity Retrieval from Radar Phase Measurements
title_fullStr High Temporal Resolution Refractivity Retrieval from Radar Phase Measurements
title_full_unstemmed High Temporal Resolution Refractivity Retrieval from Radar Phase Measurements
title_sort high temporal resolution refractivity retrieval from radar phase measurements
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2018-06-01
description Knowledge of the spatial and temporal variability of near-surface water vapor is of great importance to successfully model reliable radio communications systems and forecast atmospheric phenomena such as convective initiation and boundary layer processes. However, most current methods to measure atmospheric moisture variations hardly provide the temporal and spatial resolutions required for detection of such atmospheric processes. Recently, considering the high correlation between refractivity variations and water vapor pressure variations at warm temperatures, and the good temporal and spatial resolution that weather radars provide, the measurement of the refractivity with radar became of interest. Firstly, it was proposed to estimate refractivity variations from radar phase measurements of ground-based stationary targets returns. For that, it was considered that the backscattering from ground targets is stationary and the vertical gradient of the refractivity could be neglected. Initial experiments showed good results over flat terrain when the radar and target heights are similar. However, the need to consider the non-zero vertical gradient of the refractivity over hilly terrain is clear. Up to date, the methods proposed consider previous estimation of the refractivity gradient in order to correct the measured phases before the refractivity estimation. In this paper, joint estimation of the refractivity variations at the radar height and the refractivity vertical gradient variations using scan-to-scan phase measurement variations is proposed. To reduce the noisiness of the estimates, a least squares method is used. Importantly, to apply this algorithm, it is not necessary to modify the radar scanning mode. For the purpose of this study, radar data obtained during the Refractivity Experiment for H 2 O Research and Collaborative Operational Technology Transfer (REFRACTT_2006), held in northeastern Colorado (USA), are used. The refractivity estimates obtained show a good performance of the algorithm proposed compared to the refractivity derived from two automatic weather stations located close to the radar, demonstrating the possibility of radar based refractivity estimation in hilly terrain and non-homogeneous atmosphere with high spatial resolution.
topic atmosphere remote sensing
atmospheric refractivity
weather radar
ground clutter
electromagnetic wave propagation
parabolic wave equation
url http://www.mdpi.com/2072-4292/10/6/896
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