High-range resolution spectral analysis of precipitation through range imaging of the Chung-Li VHF radar
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Published:2018-01-31
Issue:1
Volume:11
Page:581-592
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ISSN:1867-8548
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Container-title:Atmospheric Measurement Techniques
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language:en
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Short-container-title:Atmos. Meas. Tech.
Author:
Tsai Shih-Chiao,Chen Jenn-Shyong,Chu Yen-Hsyang,Su Ching-Lun,Chen Jui-Hsiang
Abstract
Abstract. Multi-frequency range imaging (RIM) has been operated in the Chung-Li
very high-frequency (VHF) radar, located on the campus of National Central
University, Taiwan, since 2008. RIM processes the echo signals with a group
of closely spaced transmitting frequencies through appropriate inversion
methods to obtain high-resolution distribution of echo power in the range
direction. This is beneficial to the investigation of the small-scale
structure embedded in dynamic atmosphere. Five transmitting frequencies were
employed in the radar experiment for observation of the precipitating
atmosphere during the period between 21 and 23 August 2013. Using the Capon
and Fourier methods, the radar echoes were synthesized to retrieve the
temporal signals at a smaller range step than the original range resolution
defined by the pulse width, and such retrieved temporal signals were then
processed in the Doppler frequency domain to identify the atmosphere and
precipitation echoes. An analysis called conditional averaging was further
executed for echo power, Doppler velocity, and spectral width to verify the
potential capabilities of the retrieval processing in resolving small-scale
precipitation and atmosphere structures. Point-by-point correction of range
delay combined with compensation of range-weighting function effect has been
performed during the retrieval of temporal signals to improve the continuity
of power spectra at gate boundaries, making the small-scale structures in the
power spectra more natural and reasonable. We examined stratiform and
convective precipitation and demonstrated their different structured
characteristics by means of the Capon-processed results. The new element in
this study is the implementation of RIM on spectral analysis, especially for
precipitation echoes.
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference30 articles.
1. Chen, J.-S. and Zecha, M.: Multiple-frequency range imaging using the OSWIN
VHF radar: phase calibration and first results, Radio Sci., 44, RS1010,
https://doi.org/10.1029/2008RS003916, 2009. 2. Chen, J.-S., Su, C.-L., Chu, Y.-H., Hassenpflug, G., and Zecha, M.: Extended
application of a novel phase calibration method of multiple-frequency range
imaging to the Chung–Li and MU VHF radars, J. Atmos. Ocean. Tech., 26,
2488–2500, 2009. 3. Chen, J.-S., Tsai, S.-C., Su, C.-L., and Chu, Y.-H.: Evaluation of
multifrequency range imaging technique implemented on the Chung-Li VHF
atmospheric radar, Atmos. Meas. Tech., 9, 2345–2355,
https://doi.org/10.5194/amt-9-2345-2016, 2016a. 4. Chen, J.-S., Chu, Y.-H., Su, C.-L., Hashiguchi, H., and Li, Y.: Range imaging
of E-region field-aligned irregularities by using a multifrequency technique:
validation and initial results, IEEE T. Geosci. Remote Sens., 54, 3739–3749,
https://doi.org/10.1109/TGRS.2016.2521702, 2016b. 5. Chilson, P. B.: The retrieval and validation of Doppler velocity estimates
from range imaging, J. Atmos. Ocean. Tech., 21, 1033–1043, 2004.
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