1984Journal of Geophysical Research AtmospheresRequires access

Ambipolar diffusion in the middle atmosphere

I. Tzur, R. G. Roble

Open publisher page 4 citations

Abstract

In the middle atmosphere above 60 km the electron concentration increases with altitude, reaching values of 1010 m−3 in the daytime ionospheric E region near 100 km. The electrons are more mobile than the ions and diffuse more rapidly through the neutral atmosphere. The electron diffusion polarizes the medium, causing an electric field to develop that acts to retard the electron diffusion and enhance the conduction current of ions. We use a global zonally averaged numerical model of atmospheric electricity from the ground to 100 km to examine the effect of ambipolar diffusion and the earth's geomagnetic field on the currents and fields in the middle atmosphere. The results show that above about 65 km, ambipolar diffusion generates local electric fields and conduction currents that balance electron diffusion currents. The electric fields and conduction currents are a few orders of magnitude larger than the vertical fields and currents calculated from the downward mapping of the ionospheric potential without taking electron diffusion into account. Ambipolar diffusion does not alter the total current flowing in the global circuit. It is a local effect where enhanced conduction currents flow to balance the electron diffusion current.

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What this paper is about

In the middle atmosphere above 60 km the electron concentration increases with altitude, reaching values of 1010 m−3 in the daytime ionospheric E region near 100 km. The electrons are more mobile than the ions and diffuse more rapidly through the neutral atmosphere. The electron diffusion polarizes the medium, causing an electric field to develop that acts to retard the electron diffusion and enhance the conduction current of ions. We use a global zonally averaged numerical model of atmospheric electricity from the ground to 100 km to examine the effect of ambipolar diffusion and the earth's geomagnetic field on the currents and fields in the middle atmosphere. The results show that above about 65 km, ambipolar diffusion generates local electric fields and conduction currents that balance electron diffusion currents. The electric fields and conduction currents are a few orders of magnitude larger than the vertical fields and currents calculated from the downward mapping of the ionospheric potential without taking electron diffusion into account. Ambipolar diffusion does not alter the total current flowing in the global circuit. It is a local effect where enhanced conduction currents flow to balance the electron diffusion current.

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Available abstract

In the middle atmosphere above 60 km the electron concentration increases with altitude, reaching values of 1010 m−3 in the daytime ionospheric E region near 100 km. The electrons are more mobile than the ions and diffuse more rapidly through the neutral atmosphere. The electron diffusion polarizes the medium, causing an electric field to develop that acts to retard the electron diffusion and enhance the conduction current of ions. We use a global zonally averaged numerical model of atmospheric electricity from the ground to 100 km to examine the effect of ambipolar diffusion and the earth's geomagnetic field on the currents and fields in the middle atmosphere. The results show that above about 65 km, ambipolar diffusion generates local electric fields and conduction currents that balance electron diffusion currents. The electric fields and conduction currents are a few orders of magnitude larger than the vertical fields and currents calculated from the downward mapping of the ionospheric potential without taking electron diffusion into account. Ambipolar diffusion does not alter the total current flowing in the global circuit. It is a local effect where enhanced conduction currents flow to balance the electron diffusion current.

Key concepts: Ambipolar diffusion, Electric field, Diffusion, Diffusion current, Atmosphere (unit), Electron, Physics, Electric current

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