论文标题
相对论电子沉淀通过EMIC波:非线性谐振效应的重要性
Relativistic electron precipitation by EMIC waves: importance of nonlinear resonant effects
论文作者
论文摘要
地球辐射带中的相对论电子损失通常归因于电磁波的电子谐振散射。这种散射最重要的波模式之一是电磁离子回旋(EMIC)模式。在准线性扩散框架内,具有EMIC波的相对论电子的回旋共振导致对大气的电子沉淀非常快。但是,波强度通常超过非线性谐振相互作用的阈值,并且由于力束效应,这种强烈的EMIC波已被证明将电子从损耗锥传递出来。在这项研究中,我们研究了该转运是否可以阻止电子沉淀。我们结合了测试粒子模拟,对EMIC驱动的电子沉淀的低空elfin观测以及地面的EMIC观测值。比较模拟和观察结果,我们表明,尽管距离倾角的倾斜度低较低,但较高的螺距角散射导致损耗锥填充和电子沉淀。
Relativistic electron losses in Earth's radiation belts are usually attributed to electron resonant scattering by electromagnetic waves. One of the most important wave mode for such scattering is the electromagnetic ion cyclotron (EMIC) mode. Within the quasi-linear diffusion framework, the cyclotron resonance of relativistic electrons with EMIC waves results in very fast electron precipitation to the atmosphere. However, wave intensities often exceed the threshold for nonlinear resonant interaction, and such intense EMIC waves have been shown to transport electrons away from the loss cone due to the force bunching effect. In this study we investigate if this transport can block electron precipitation. We combine test particle simulations, low-altitude ELFIN observations of EMIC-driven electron precipitation, and ground-based EMIC observations. Comparing simulations and observations, we show that, despite of the low pitch-angle electrons being transported away from the loss cone, the scattering at higher pitch angles results in the loss cone filling and electron precipitation.