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Stormtime transport of ring current and radiation belt ions

机译:环流和辐射带离子的暴风雨时间传输

摘要

This is an investigation of stormtime particle transport that leads to formation of the ring current. Our method is to trace the guiding-center motion of representative ions (having selected first adiabatic invariants mu) in response to model substorm-associated impulses in the convection electric field. We compare our simulation results qualitatively with existing analytically tractable idealizations of particle transport (direct convective access and radial diffusion) in order to assess the limits of validity of these approximations. For mu approximately less than 10 MeV/G (E approximately less than 10 keV at L equivalent to 3) the ion drift period on the final (ring-current) drift shell of interest (L equivalent to 3) exceeds the duration of the main phase of our model storm, and we find that the transport of ions to this drift shell is appropriately idealized as direct convective access, typically from open drift paths. Ion transport to a final closed drift path from an open (plasma-sheet) drift trajectory is possible for those portions of that drift path that lie outside the mean stormtime separatrix between closed and open drift trajectories, For mu approximately 10-25 MeV/G (110 keV approximately less than E approximately less than 280 keV at L equivalent to 3) the drift period at L equivalent to 3 is comparable to the postulated 3-hr duration of the storm, and the mode of transport is transitional between direct convective access and transport that resembles radial diffusion. (This particle population is transitional between the ring current and radiation belt). For mu approximately greater than 25 MeV/G (radiation-belt ions having E approximately greater than 280 keV at L equivalent to 3) the ion drift period is considerably shorter than the main phase of a typical storm, and ions gain access to the ring-current region essentially via radial diffusion. By computing the mean and mean-square cumulative changes in 1/L among (in this case) 12 representative ions equally spaced in drift time around the steady-state drift shell of interest (L equivalent to 3), we have estimated (from both our forward and our time-reversed simulations) the time-integrated radial-diffusion coefficients D(sup sim)(sub LL) for particles having selected values of mu approximately greater than 15 MeV/G. The results agree surprisingly well with the predictions (D(sup ql)(sub LL)) of quasilinear radial diffusion theory, despite the rather brief duration (approximately 3 hrs) of our model storm and despite the extreme variability (with frequency) of the spectral-density function that characterizes the applied electric field during our model storm. As expected, the values of D(sup sim)(sub LL) deduced (respectively) from our forward and time-reversed simulations agree even better with each other and with D(sup sim)(sub LL) when the impulse amplitudes which characterize the individual substorms of our model storm are systematically reduced.
机译:这是对暴风时粒子传输的研究,导致形成环流。我们的方法是响应对流电场中与模型相关的与风暴相关的脉冲,跟踪代表离子(具有选定的第一绝热常数mu)的引导中心运动。我们定性地将我们的模拟结果与粒子传输的现有分析可控理想化(直接对流通道和径向扩散)进行定性比较,以评估这些近似的有效性极限。对于大约小于10 MeV / G的亩(在L等于3时E约小于10 keV),最终(环电流)目标漂移壳(L等于3)上的离子漂移周期超过了主电极的持续时间。在我们的模型暴风雨阶段,我们发现离子到该漂移壳的传输被适当地理想化为直接对流通道,通常是从开放的漂移路径进入。对于那些位于封闭和开放漂移轨迹之间的平均暴风雨时间间隔之外的漂移路径部分,可以从开放(等离子片)漂移轨迹向最终封闭漂移路径进行离子迁移,μ大约为10-25 MeV / G (110 keV大约小于E大约小于280 keV,在L等于3时)漂移周期在L等于3时与假定的暴风雨3小时持续时间相当,运输方式在直接对流通道之间过渡和类似径向扩散的运输。 (该粒子数量是环电流和辐射带之间的过渡区域)。对于大约大于25 MeV / G的mu(在E等于3时E大约大于280 keV的辐射带离子),离子漂移周期明显短于典型风暴的主相位,并且离子可以进入环-电流区域基本上通过径向扩散。通过计算(在这种情况下)在目标稳态漂移壳(L等于3)周围的漂移时间内等间隔分布的12个代表性离子中,1 / L的均值和均方值累积变化,我们估算了我们的正演模拟和时间反演模拟)选择的μ值大约大于15 MeV / G的粒子的时间积分径向扩散系数D(sup sim)(sub LL)。尽管我们模型风暴的持续时间很短(大约3小时),并且尽管模型风暴的极端可变性(随频率变化),但结果仍与准线性径向扩散理论的预测(D(sup ql)(sub LL))出乎意料的吻合。频谱密度函数,用于表征模型风暴期间施加的电场。如预期的那样,当脉冲幅度表征了D(sup sim)(sub LL)的值时,从我们的正向和时间反转模拟分别推导出的D(sup sim)(sub LL)值彼此之间以及与D(sup sim)(sub LL)都更好。系统减少了模型风暴的各个子风暴。

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