全数字相控阵气象雷达下爆前兆观测比较框架

IF 1.9 4区 地球科学 Q2 ENGINEERING, OCEAN Journal of Atmospheric and Oceanic Technology Pub Date : 2023-05-25 DOI:10.1175/jtech-d-22-0130.1
Connor Pearson, T. Yu, D. Bodine, S. Torres, A. Reinhart
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引用次数: 1

摘要

下爆发是一种快速演变的气象现象,具有许多垂直方向的前兆特征,当前NEXRAD系统的时间分辨率和垂直采样过于粗糙,无法正确观察其演变和前兆特征。未来的全数字极化相控阵天气雷达(标准杆数)应能够提高大气的时间分辨率和空间采样,以更好地观测下击暴流等快速演变的危险。先前的工作重点是了解在固定标准杆数雷达上使用各种扫描技术的相关权衡;然而,旋转极化标准杆数(RPAR)是一种更可行和更具成本效益的候选。因此,了解与在RPAR上使用各种扫描技术相关的权衡对于学习如何使用这种系统最好地观测下击暴流至关重要。这项工作开发了一个框架,用于分析在观测下击暴及其前兆特征时与不同扫描策略相关的权衡。在自适应扫描框架中,还使用传统和成像扫描策略进行了概念验证分析,该分析使用云模型1(CM1)模拟的产生下击暴流的雷暴,以显示该框架的潜在价值和可行性。概念验证分析的初步结果表明,成像作为一种更新时间加速方法的好处确实是有限的。随着成像被用来实现更大的加速因子,相应的数据退化开始阻碍对各种前兆特征的观测。
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A Framework for Comparisons of Downburst Precursor Observations using an All-Digital Phased Array Weather Radar
Downbursts are a rapidly evolving meteorological phenomena with numerous vertically-oriented precursor signatures, and the temporal resolution and vertical sampling of the current NEXRAD system are too coarse to observe their evolution and precursor signatures properly. A future all-digital polarimetric phased array weather radar (PAR) should be able to improve both temporal resolution and spatial sampling of the atmosphere to provide better observations of rapidly evolving hazards such as downbursts. Previous work has been focused on understanding the trade-offs associated with using various scanning techniques on stationary PAR radars; however, a rotating, polarimetric PAR (RPAR) is a more feasible and cost-effective candidate. Thus, understanding the trade-offs associated with using various scanning techniques on an RPAR is vital in learning how to best observe downbursts with such a system. This work develops a framework for analyzing the trade-offs associated with different scanning strategies in the observation of downbursts and their precursor signatures. A proof-of-concept analysis — which uses a Cloud Model 1 (CM1) simulated downburst-producing thunderstorm — is also performed with both conventional and imaging scanning strategies in an adaptive scanning framework to show the potential value and feasibility of the framework. Preliminary results from the proof-of-concept analysis indicate that there is indeed a limit to the benefits of imaging as an update time speedup method. As imaging is used to achieve larger speedup factors, corresponding data degradation begins to hinder the observations of various precursor signatures.
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来源期刊
CiteScore
4.50
自引率
9.10%
发文量
135
审稿时长
3 months
期刊介绍: The Journal of Atmospheric and Oceanic Technology (JTECH) publishes research describing instrumentation and methods used in atmospheric and oceanic research, including remote sensing instruments; measurements, validation, and data analysis techniques from satellites, aircraft, balloons, and surface-based platforms; in situ instruments, measurements, and methods for data acquisition, analysis, and interpretation and assimilation in numerical models; and information systems and algorithms.
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