Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals
<p>Multi-Doppler-radar network observations have been used in different configurations over the last several decades to conduct three-dimensional wind retrievals in mesoscale convective systems. Here, the impacts of the selected radar volume coverage pattern (VCP), the sampling time for the VC...
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doaj-3cba1a9d5cb94205b842c42e476692382020-11-25T01:00:57ZengCopernicus PublicationsAtmospheric Measurement Techniques1867-13811867-85482019-03-01121999201810.5194/amt-12-1999-2019Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievalsM. Oue0P. Kollias1P. Kollias2P. Kollias3A. Shapiro4A. Tatarevic5T. Matsui6School of Marine and Atmospheric Sciences, Stony Brook University, Stony Brook, New York 11794, USASchool of Marine and Atmospheric Sciences, Stony Brook University, Stony Brook, New York 11794, USAEnvironmental and Climate Sciences Department, Brookhaven National Laboratory, Upton, New York 11973, USADepartment of Atmospheric and Oceanic Sciences, McGill University, Montreal, Québec H3A 0G4, CanadaSchool of Meteorology, University of Oklahoma, Norman, Oklahoma 73019, USADepartment of Atmospheric and Oceanic Sciences, McGill University, Montreal, Québec H3A 0G4, CanadaMesoscale Atmospheric Processes Laboratory NASA Goddard Space Flight Center, Greenbelt, Maryland 20771, USA<p>Multi-Doppler-radar network observations have been used in different configurations over the last several decades to conduct three-dimensional wind retrievals in mesoscale convective systems. Here, the impacts of the selected radar volume coverage pattern (VCP), the sampling time for the VCP, the number of radars used, and the added value of advection correction on the retrieval of the vertical air motion in the upper part of convective clouds are examined using the Weather Research and Forecasting (WRF) model simulation, the Cloud Resolving Model Radar SIMulator (CR-SIM), and a three-dimensional variational multi-Doppler-radar retrieval technique. Comparisons between the model truth (i.e., WRF kinematic fields) and updraft properties (updraft fraction, updraft magnitude, and mass flux) retrieved from the CR-SIM-generated multi-Doppler-radar field are used to investigate these impacts. The findings are that (1) the VCP elevation strategy and sampling time have a significant effect on the retrieved updraft properties above 6 <span class="inline-formula">km</span> in altitude; (2) 2 <span class="inline-formula">min</span> or shorter VCPs have small impacts on the retrievals, and the errors are comparable to retrievals using a snapshot cloud field; (3) increasing the density of elevation angles in the VCP appears to be more effective to reduce the uncertainty than an addition of data from one more radar, if the VCP is performed in 2 <span class="inline-formula">min</span>; and (4) the use of dense elevation angles combined with an advection correction applied to the 2 <span class="inline-formula">min</span> VCPs can effectively improve the updraft retrievals, but for longer VCP sampling periods (5 <span class="inline-formula">min</span>) the value of advection correction is challenging. This study highlights several limiting factors in the retrieval of upper-level vertical velocity from multi-Doppler-radar networks and suggests that the use of rapid-scan radars can substantially improve the quality of wind retrievals if conducted in a limited spatial domain.</p>https://www.atmos-meas-tech.net/12/1999/2019/amt-12-1999-2019.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M. Oue P. Kollias P. Kollias P. Kollias A. Shapiro A. Tatarevic T. Matsui |
spellingShingle |
M. Oue P. Kollias P. Kollias P. Kollias A. Shapiro A. Tatarevic T. Matsui Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals Atmospheric Measurement Techniques |
author_facet |
M. Oue P. Kollias P. Kollias P. Kollias A. Shapiro A. Tatarevic T. Matsui |
author_sort |
M. Oue |
title |
Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals |
title_short |
Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals |
title_full |
Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals |
title_fullStr |
Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals |
title_full_unstemmed |
Investigation of observational error sources in multi-Doppler-radar three-dimensional variational vertical air motion retrievals |
title_sort |
investigation of observational error sources in multi-doppler-radar three-dimensional variational vertical air motion retrievals |
publisher |
Copernicus Publications |
series |
Atmospheric Measurement Techniques |
issn |
1867-1381 1867-8548 |
publishDate |
2019-03-01 |
description |
<p>Multi-Doppler-radar network observations have been used
in different configurations over the last several decades to conduct
three-dimensional wind retrievals in mesoscale convective systems. Here, the
impacts of the selected radar volume coverage pattern (VCP), the sampling
time for the VCP, the number of radars used, and the added value of
advection correction on the retrieval of the vertical air motion in the
upper part of convective clouds are examined using the Weather Research and
Forecasting (WRF) model simulation, the Cloud Resolving Model Radar
SIMulator (CR-SIM), and a three-dimensional variational multi-Doppler-radar
retrieval technique. Comparisons between the model truth (i.e., WRF
kinematic fields) and updraft properties (updraft fraction, updraft
magnitude, and mass flux) retrieved from the CR-SIM-generated multi-Doppler-radar field are used to investigate these impacts. The findings are that (1) the
VCP elevation strategy and sampling time have a significant effect on the
retrieved updraft properties above 6 <span class="inline-formula">km</span> in altitude; (2) 2 <span class="inline-formula">min</span> or shorter VCPs
have small impacts on the retrievals, and the errors are comparable to
retrievals using a snapshot cloud field; (3) increasing the density of
elevation angles in the VCP appears to be more effective to reduce the
uncertainty than an addition of data from one more radar, if the VCP is
performed in 2 <span class="inline-formula">min</span>; and (4) the use of dense elevation angles combined
with an advection correction applied to the 2 <span class="inline-formula">min</span> VCPs can effectively
improve the updraft retrievals, but for longer VCP sampling periods (5 <span class="inline-formula">min</span>)
the value of advection correction is challenging. This study highlights
several limiting factors in the retrieval of upper-level vertical velocity
from multi-Doppler-radar networks and suggests that the use of rapid-scan
radars can substantially improve the quality of wind retrievals if conducted
in a limited spatial domain.</p> |
url |
https://www.atmos-meas-tech.net/12/1999/2019/amt-12-1999-2019.pdf |
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