HR: 0800h
AN: AE21A-0974 [Abstracts]
TI: Observed Relationships among Narrow Bipolar Events, Cloud-to-ground Lightningand Convective Strength in
Summer 2005 Great Plains Thunderstorms
AU: * Wiens, K C
EM: kwiens@lanl.gov
AF: Los Alamos National Laboratory, Space and Remote Sensing Sciences Group
ISR-2
MS D436, Los Alamos, NM 87545
United States
AU: Suszcynsky, D M
EM: dsuszcynsky@lanl.gov
AF: Los Alamos National Laboratory, Space and Remote Sensing Sciences Group
ISR-2
MS D436, Los Alamos, NM 87545
United States
AB:
Satellite-based Very High Frequency (VHF) lightning sensors are
limited in sensitivity to a particular (but particularly powerful)
in-cloud radio frequency (RF) pulse. Hence, the viability of global storm
tracking based on satellite-based VHF sensors largely depends on
whether these strong in-cloud pulses can be
used as robust and generic indicators of convective strength. The RF
pulses observed by satellite are sometimes accompanied by distinctive
narrow electric field change pulses (called Narrow Bipolar Events or
NBEs) observed by ground-based Very Low Frequency
sensors such as the Los Alamos Sferic Array (LASA). A recent
preliminary study compared LASA NBE flash rates to cloud-to-ground
(CG) flash rates in a small geographical area in central and northern
Florida. This study used CG flash rates as a proxy for convective
strength, and found that NBE flash rates are proportional to CG flash
rates, and, by extension, to convective strength.
Here, we extend the earlier studies, using an updated LASA in the Great Plains
which covers a much larger geographical area and has improved detection
efficiency of intra-cloud (IC) flashes. Instead of using CG flash rate as a
proxy for convective strength, we use maximum radar reflectivity and
maximum height of 30, 40, 50 dBZ radar echo as proxies for convective
strength and compare these convective proxies to IC, CG, and NBE
flash rates recorded by the Great Plains LASA. In addition to gridded
statistical relationships of these quantities, we also present sample
case studies to investigate finer-scale temporal and spatial
relationships between lightning and convective development.
DE: 3304 Atmospheric electricity
DE: 3324 Lightning
DE: 3360 Remote sensing
DE: 3394 Instruments and techniques
SC: Atmospheric and Space Electricity [AE]
MN: Fall Meeting 2005