HR: 08:30h
AN: AE11B-01 INVITED [Abstracts]
TI: EHD Approach to Tornadic Thunderstorms and Methods of Their Destruction
AU: * Kikuchi, H
EM: hkikuchi@mars.dti.ne.jp
AF: Institute for Environmental Electromagnetics, 3-8-18, Komagome, Toshima-ku, Tokyo, 170 Japan
AB:
In many cases, tornadoes are accompanied or involved by lightning discharges and are thought to be com- posed of uncharged
and charged components different from each other in terms of velocity, vorticity, heli- city, and appearance (shape and
luminosity). Their visible dark portion may correspond to uncharged tor- nadoes, while luminous or bright part may involve
charged tornadoes with return strokes. Usually, un-
charged tornadoes have been considered to be ascending hot streams of thermohydrodynamic origin. This is the conventional
theory of tornadoes, based on hydrodynamics (HD) or thermohydrodynamics (THD) but does not consider electrical effects that
are really significant in tornadic thunderstorms..It has been shown, however, that a new electrohydrodynamics (EHD)
established and developed over the last more than a decade is applicable to tornadic thunderstorms with lightning. This paper summarizes such an EHD approach and proposes the methods of tornado destruction based on EHD. Space charge and electric
field configurations in tornadic thunderstorms are considered to be quadrupole-like, taking into account the cloud-charge
images onto the ground. Accordingly, dynamics of particles and EHD flows in an electric quadrupole forming an electric cusp
and mirror can straightly apply to those circumstances. When the gas pressure is below the breakdown threshold, there occur
helical motion of particles, not only charged but also even uncharged, and/or vortex generation. While for gases whose
pressure is beyond the breakdown threshold, the following basic processes succeed one after another. When the grain is
uncharged, a dis- charge channel is formed towards each pole as a result of X-type reconnection. For a negatively or posi-
tively charged grain, I-type reconnection occurs between the grain and positive or negative poles, respect- ively. For
uncharged two grains, O-type reconnection between both grains could be involved in addition to X-type between each pole,
while for oppositely charged two grains, F-type reconnection could be in- volved between grains in addition to I-type between each grain and a pole with opposite polarity. Thus one can say that the uncharged component of tornadic thunderstorms is
composed of conventional ascending hot streams of thermohydrodynamic origin and particle flows of new EHD origin produced by
a quadru- pole-like cloud-base, funnel-top charge distributions, while the charged component is a bunch of return strokes
including charged flows due to dust-related electric reconnection and EHD vortices in large-scale generated by EHD helical
turbulence where there may occur self-organization to coalescence of fluid vor- tex and electric displacement field lines at
least in an initial stage of return stroke (rise time of some ms), since earth's magnetic field could be ignored. This also
indicates that fluid vortex breakdown points also tend to merge electric cusps, X-type and O-type. Then the principle of
dust-related electric reconnection could be replaced by dust cluster injection into electric cusps (X-type and O-type) in
several ways just mentioned above. Thus a variety of such dust cluster injection could cause additional cloud-to-dust cluster discharges, expending electrostatic energy accumulated in thunderclouds considerably and destructing tornadoes consequently.
DE: 0600 ELECTROMAGNETICS
SC: Atmospheric and Space Electricity [AE]
MN: 2005 Joint Assembly