Plasmaspheric zonal electric fields and coupling fluxes from the Dunedin VLF Doppler experiment, for 180°E, L ≈ 2.3, at solstice and equinox

H.F. Balmforth, N.R. Thomson
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Abstract

Group delays and Doppler shifts from ducted whistler-mode signals are measured using the VLF Doppler experiment at Dunedin, New Zealand (45.8°S, 170.5°E). Equatorial zonal electric field and plasmasphere-ionosphere coupling fluxes are determined for L ≈ 2.3 at June solstice and equinox during magnetically quiet periods. The general features of the electric field measured at Dunedin agree with those predicted from ionospheric dynamo theory with a (1,−2) tidal component. Some seasonal variations are observed, with the electric field measured during equinox being smaller and predominantly westward during the night. The electric field at June solstice is also westward during the evening and for part of the night, but turns sharply eastward during the pre-dawn and dawn period at the duct entry site. The June electric field appears to follow a diurnal variation whereas the equinox electric field shows a possible 4-hourly periodic variation. Seasonal variations in the neutral wind pattern, altering the configuration of the ionospheric dynamo field, are the probable cause of the seasonal differences in the electric field. The seasonal variation of the coupling fluxes can be explained by the alteration of the E x B drift pattern, caused by the changes in the electric field.

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达尼丁VLF多普勒实验在180°E, L≈2.3时的等离子体层纬向电场和耦合通量
利用新西兰达尼丁(45.8°S, 170.5°E)的VLF多普勒实验测量了导管哨声模式信号的群延迟和多普勒频移。测定了6月至日和6月春分时赤道纬向电场和等离子体-电离层耦合通量的L≈2.3。在达尼丁测得的电场的一般特征与电离层发电机理论预测的(1,−2)潮汐分量一致。观察到一些季节变化,在春分期间测量的电场较小,夜间主要向西。6月至日的电场在傍晚和部分夜间也是向西的,但在黎明前和黎明期间在管道入口处急剧向东转向。六月的电场似乎遵循日变化,而春分的电场则显示出可能每4小时的周期性变化。中性风模式的季节性变化改变了电离层发电机场的结构,这可能是造成电场季节性差异的原因。耦合通量的季节变化可以用电场变化引起的E x B漂移模式的改变来解释。
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