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首页> 外文期刊>Journal of Geophysical Research. Biogeosciences >Coherent HF radar backscatter characteristics associated with auroral forms identified by incoherent radar techniques: A comparison of CUTLASS and EISCAT observations
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Coherent HF radar backscatter characteristics associated with auroral forms identified by incoherent radar techniques: A comparison of CUTLASS and EISCAT observations

机译:与非相干雷达技术确定的与极光形式相关的相干HF雷达反向散射特性:CUTLASS和EISCAT观测值的比较

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摘要

Backscatter from decameter-wavelength field-aligned F region irregularities, as measured by the Cooperative UK Twin Located Auroral Sounding System (CUTLASS) Finland HF coherent radar, is compared with common volume plasma parameters and the electric field deduced by the European Incoherent Scatter (EISCAT) UHF incoherent radar system, for a 12 hour period from June 18 to June 19, 1996. During this interval we find an excellent agreement between irregularity Doppler velocity and bulk ion drift resolved along the CUTLASS beam. Backscatter is found to exist only in regions of nonzero electric field, as the E * B instability growth rate is dependent on E. Following a substorm expansion phase onset, backscatter largely disappears for a period of several hours, thought to be a consequence of nondeviative absorption of the HF radio wave in the D region or a quenching of the F region instability mechanism by enhanced E region Pedersen conductivity. Finally, the presence of auroral arcs within the scatter volume increases the intensity of backscatter returns and introduces a subsidiary peak, displaced from the preexisting peak, in the backscatter spectra; this subsidiary peak results in an increase in the apparent spectral width of the backscatter. We show how this allows the location of precipitation features within the field of view field of view to be determined.
机译:由英国合作双子极光探测系统(CUTLASS)芬兰HF相干雷达测得的十米-波长场对准的F区不规则性的反向散射与普通体积等离子体参数以及由欧洲非相干散射(EISCAT)推导的电场进行了比较)UHF非相干雷达系统,从1996年6月18日到6月19日,持续了12个小时。在此间隔内,我们发现不规则多普勒速度与沿CUTLASS波束解析的体离子漂移之间有很好的一致性。发现后向散射仅存在于非零电场区域,因为E * B的不稳定性增长率取决于E。在亚暴扩张阶段开始后,后向散射在几个小时的时间内基本消失了,这被认为是非偏离的结果。通过增强E区的Pedersen电导率来吸收D区的HF无线电波或终止F区的不稳定性机理。最后,在散射体中极光弧的存在增加了反向散射回波的强度,并在反向散射谱中引入了一个与先前存在的峰不同的子峰。该辅助峰导致反向散射的表观光谱宽度增加。我们展示了这如何确定降水特征在视场内的位置。

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