HR: 1330h
AN: AE32A-0161 [PDF]
TI: Combined TOA/MDF Lightning Location Using Three Globally Distant Sites
AU: * Wood, T G
EM: twood@stanford.edu
AF: Stanford University, 350 Serra Mall St
David Packard Bldg Rm 351, Stanford, CA 94305 United States
AU: Inan, U S
EM: inan@nova.stanford.edu
AF: Stanford University, 350 Serra Mall St
David Packard Bldg Rm 351, Stanford, CA 94305 United States
AB:
Lightning discharges generate electromagnetic pulses, known as sferics, that propagate through the waveguide formed by the
earth and the ionosphere. The energy in the VLF band of the sferic can propagate over great distances ($\sim$10,000 km) with
low loss (3 dB/Mm) and can therefore be detected far from the source lightning location. Using sferic measurements from VLF
receivers located at three globally separated sites (Palmer Station, Antarctica; Upland, Indiana; Sde Boker, Israel) the
locations of individual lightning discharges are triangulated. Both time of arrival (TOA) and magnetic direction finding
(MDF) data are used in the location algorithm. The very large distances between receiver sites and a high global sferic rate
($\sim$100 per second) create space-time complications in the correlation of data between sites causing ambiguities in the
pairing of sferics detected at one site to their corresponding sferics detected at the other two sites. These complications
sometimes result in the detection of ``ghost'' lightning discharges which occurs when physically inconsistent (not
originating from the same lightning discharge) yet statistically consistent (acceptable arrival times and azimuths) sferics
are used in the location algorithm. Both ``ghost'' event reduction and location accuracy for three verses two station
location are discussed. Selected results are shown from August 2002.
DE: 3324 Lightning
DE: 3360 Remote sensing
DE: 3394 Instruments and techniques
SC: Atmospheric and Space Electricity [AE]
MN: 2003 Fall Meeting