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Protection characteristics of a Faraday cage compromised by lightning burnthrough.
Author(s) -
Larry K. Warne,
Edward Bystrom,
Roy Jorgenson,
S. Garcia-Alonso Montoya,
K.O. Merewether,
R. S. Coats,
Leonard Martinez,
J.M. Jojola
Publication year - 2012
Publication title -
osti oai (u.s. department of energy office of scientific and technical information)
Language(s) - English
Resource type - Reports
DOI - 10.2172/1038196
Subject(s) - faraday cage , coupling (piping) , amplitude , voltage , physics , lightning (connector) , electrical engineering , electric field , magnetic field , mechanics , materials science , optics , engineering , power (physics) , composite material , thermodynamics , quantum mechanics
A lightning flash consists of multiple, high-amplitude but short duration return strokes. Between the return strokes is a lower amplitude, continuing current which flows for longer duration. If the walls of a Faraday cage are made of thin enough metal, the continuing current can melt a hole through the metal in a process called burnthrough. A subsequent return stroke can couple energy through this newly-formed hole. This LDRD is a study of the protection provided by a Faraday cage when it has been compromised by burnthrough. We initially repeated some previous experiments and expanded on them in terms of scope and diagnostics to form a knowledge baseline of the coupling phenomena. We then used a combination of experiment, analysis and numerical modeling to study four coupling mechanisms: indirect electric field coupling, indirect magnetic field coupling, conduction through plasma and breakdown through the hole. We discovered voltages higher than those encountered in the previous set of experiments (on the order of several hundreds of volts)

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