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Integration of the Total Lightning Jump Algorithm into Current Operational Warning Environment Conceptual ModelsThe presence and rates of total lightning are both correlated to and physically dependent upon storm updraft strength, mixed phase precipitation volume and the size of the charging zone. The updraft modulates the ingredients necessary for electrification within a thunderstorm, while the updraft also plays a critical role in the development of severe and hazardous weather. Therefore utilizing this relationship, the monitoring of lightning rates and jumps provides an additional piece of information on the evolution of a thunderstorm, more often than not, at higher temporal resolution than current operational radar systems. This correlation is the basis for the total lightning jump algorithm that has been developed in recent years. Currently, the lightning jump algorithm is being tested in two separate but important efforts. Schultz et al. (2014; AMS 10th Satellite Symposium) is exploring the transition of the algorithm from its research based formulation to a fully objective algorithm that includes storm tracking, Geostationary Lightning Mapper (GLM) Proxy data and the lightning jump algorithm. Chronis et al. (2014; this conference) provides context for the transition to current operational forecasting using lightning mapping array based products. However, what remains is an end to end physical and dynamical basis for relating lightning rates to severe storm manifestation, so the forecaster has a reason beyond simple correlation to utilize the lightning jump algorithm within their severe storm conceptual models. Therefore, the physical basis for the lightning jump algorithm in relation to severe storm dynamics and microphysics is a key component that must be further explored. Many radar studies have examined flash rates and their relation to updraft strength, updraft volume, precipitation‐sized ice mass, etc.; however, relation specifically to lightning jumps is fragmented within the literature. Thus the goal of this study is to use multiple Doppler techniques to resolve the physical and dynamical storm characteristics specifically around the time of the lightning jump. This information will help forecasters anticipate lightning jump occurrence, or even be of use to determine future characteristics of a given storm (e.g., development of a mesocyclone, downdraft, or hail signature on radar), providing additional lead time/confidence in the severe storm warning paradigm.
Document ID
20140006918
Acquisition Source
Marshall Space Flight Center
Document Type
Abstract
Authors
Shultz, Christopher J.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Carey, Lawrence D.
(Alabama Univ. Huntsville, AL, United States)
Schultz, Elise V.
(Alabama Univ. Huntsville, AL, United States)
Stano, Geoffrey T.
(ENSCO, Inc. Huntsville, AL, United States)
Blakeslee, Richard J.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Goodman, Steven J.
(National Oceanic and Atmospheric Administration Greenbelt, MD, United States)
Date Acquired
June 9, 2014
Publication Date
February 2, 2014
Subject Category
Meteorology And Climatology
Report/Patent Number
M13-2837
Report Number: M13-2837
Meeting Information
Meeting: AMS Annual Meeting (American Meteorological Society) 2014
Location: Atlanta, GA
Country: United States
Start Date: February 2, 2014
End Date: February 6, 2014
Sponsors: American Meteorological Society
Distribution Limits
Public
Copyright
Public Use Permitted.
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