HR: 1330h
AN: AE42A-0785 [PDF]
TI: Numerical Simulation of the chemical effects of sprite phenomena in the mesosphere
AU: * Hiraki, Y
EM: hira@pat.geophys.tohoku.ac.jp
AF: Department of Geophysics, Graduate School of Science, Tohoku University, Aoba, Aramaki, Aoba-ku,
Sendai, 980-8578
Japan
AU: Tong, L
EM: tong@ifs.tohoku.ac.jp
AF: Institute of Fluid Science, Tohoku University, 2-1-1, Katahira Aoba-ku, Sendai, 980-8577
Japan
AU: Kasai, Y
EM: ykasai@crl.go.jp
AF: Communications Research Laboratory, 4-2-1 Nukui-Kitamachi, Koganei, Tokyo, 184-8795
Japan
AU: Ichimura, A
EM: ichimura@pub.isas.ac.jp
AF: Institute of Space and Astronautical Science, 3-1-1 Yoshinodai, Sagamihara, Kanagawa, 229-8510
Japan
AU: Fukunishi, H
EM: fuku@pat.geophys.tohoku.ac.jp
AF: Department of Geophysics, Graduate School of Science, Tohoku University, Aoba, Aramaki, Aoba-ku,
Sendai, 980-8578
Japan
AU: Nanbu, K
EM: nanbu@ifs.tohoku.ac.jp
AF: Institute of Fluid Science, Tohoku University, 2-1-1, Katahira Aoba-ku, Sendai, 980-8577
Japan
AB:
We conducted numerical simulation of the chemical effects of sprite halos in the mesosphere. Our target is to clarify how
much O($^1$D) is produced by dissociation of O$_2$ in a single sprite halo event. Monte Carlo simulation is performed to
examine a quasi-static condition of the electron energy distribution functions (EEDFs) and to obtain the rate coefficients of
electron impacts (especially in the processes related to ionization of N$_2$ and O$_2$, dissociation and dissociative
attachment of O$_2$) for a non-thermal case of interest. Numerical simulation showed that ambient electrons are heated by
intense lightning-induced electric field, up to an average energy of 2-7 eV, which is sufficient to dissociate O$_2$. The
EEDFs are characterized by a non-Maxwellian distribution, but are in a quasi-static condition. The consistency of cross
section data is evaluated, and the rate constants defined by the EEDFs as functions of E/N are compared with the previous
results of other researchers. Thus, the effect of the uncertainty of the rate constants used in a quasi-electrostatic model
in the estimation of the O($^1$D) production will be discussed in this paper. Solving the continuity equations for O($^1$D,
$^3$P), electron, O$^-$, coupled with a 2-D quasi-electrostatic model (using the Poisson's equation and the equation of
charge transfer), we estimated the total O($^1$D) production by a single sprite halo. Initial results indicated that the
total O($^1$D) production is 10$^3$-10$^4$ cm$^{-3}$ at 70-90 km. We also examined the dependence of thundercloud charge
moment and initial conditions (e.g., assuming density profiles in the daytime or nighttime) on the O($^1$D) production and
the temporal variation of O($^1$D) during occurrence of a sprite halo. These results imply that the sprite halos become an
important source of O($^1$D) as giving rise to chemical potential changes of the mesosphere because O($^1$D) is to initiate
the oxidation of a wide variety of atmospheric long-lived tracer constituents (e.g., water vapor). We are improving our model
for investigating the impact of sprite phenomena on the mesospheric HOx chemistry at their chemical equilibrium state. The
effect on the HOx chemistry obtained from the improved model will be discussed.
DE: 0340 Middle atmosphere--composition and chemistry
DE: 0342 Middle atmosphere--energy deposition
DE: 2427 Ionosphere/atmosphere interactions (0335)
DE: 2451 Particle acceleration
DE: 3304 Atmospheric electricity
SC: Atmospheric and Space Electricity [AE]
MN: 2003 Fall Meeting