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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Bounce-averaged advection and diffusion coefficients for monochromatic electromagnetic ion cyclotron wave: Comparison between test-particle and quasi-linear models
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Bounce-averaged advection and diffusion coefficients for monochromatic electromagnetic ion cyclotron wave: Comparison between test-particle and quasi-linear models

机译:单色电磁离子回旋波的弹跳平均对流扩散系数:测试粒子模型与准线性模型的比较

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The electromagnetic ion cyclotron (EMIC) wave has long been suggested to be responsible for the rapid loss of radiation belt relativistic electrons. The test-particle simulations are performed to calculate the bounce-averaged pitch angle advection and diffusion coefficients for parallel-propagating monochromatic EMIC waves. The comparison between test-particle (TP) and quasi-linear (QL) transport coefficients is further made to quantify the influence of nonlinear processes. For typical EMIC waves, four nonlinear physical processes, i.e., the boundary reflection effect, finite perturbation effect, phase bunching and phase trapping, are found to occur sequentially from small to large equatorial pitch angles. The pitch angle averaged finite perturbation effect yields slight differences between the transport coefficients of TP and QL models. The boundary reflection effect and phase bunching produce an average reduction of >80% in the diffusion coefficients but a small change in the corresponding average advection coefficients, tending to lower the loss rate predicted by QL theory. In contrast, the phase trapping causes continuous negative advection toward the loss cone and a minor change in the corresponding diffusion coefficients, tending to increase the loss rate predicted by QL theory. For small amplitude EMIC waves, the transport coefficients grow linearly with the square of wave amplitude. As the amplitude increases, the boundary reflection effect, phase bunching and phase trapping start to occur. Consequently, the TP advection coefficients deviate from the linear growth with the square of wave amplitude, and the TP diffusion coefficients become saturated with the amplitude approaching 1 nT or above. The current results suggest that these nonlinear processes can cause significant deviation of transport coefficients from the prediction of QL theory, which should be taken into account in the future simulations of radiation belt dynamics driven by the EMIC waves.
机译:长期以来,电磁波回旋加速器(EMIC)波被认为是造成辐射带相对论电子迅速消失的原因。进行测试粒子模拟以计算平行传播的单色EMIC波的反弹平均俯仰角对流和扩散系数。进一步比较了测试粒子(TP)和准线性(QL)传输系数,以量化非线性过程的影响。对于典型的EMIC波,发现四个非线性物理过程,即边界反射效应,有限摄动效应,相位成束和相位陷获从小到大赤道俯仰角依次发生。俯仰角平均有限摄动效应在TP模型和QL模型的传输系数之间产生细微差异。边界反射效应和相位聚束使扩散系数平均降低> 80%,但相应的平均对流系数发生很小的变化,从而趋于降低QL理论预测的损耗率。相比之下,相位陷获会导致朝向损耗锥的连续负对流并且相应扩散系数的微小变化,从而倾向于增加QL理论预测的损耗率。对于小振幅的EMIC波,传输系数与波振幅的平方成线性增长。随着振幅的增加,边界反射效应,相位聚集和相位陷波开始出现。因此,TP对流系数偏离线性增长,随波幅的平方而变化,TP扩散系数随着振幅接近1 nT或更高而饱和。当前的结果表明,这些非线性过程可能导致传输系数与QL理论的预测产生显着偏差,在未来由EMIC波驱动的辐射带动力学模拟中应考虑这一点。

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