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Acceleration of energetic electrons by waves in inhomogeneous solar wind plasmas

机译:在非均匀的太阳风量离子中的波动加速活性电子

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The paper studies the influence of the background plasma density fluctuations on the dynamics of the Langmuir turbulence generated by electron beams, for parameters typical for solar type III beams and plasmas near 1 AU. A self-consistent Hamiltonian model based on the Zakharov and the Newton equations is used, which presents several advantages compared to the Vlasov approach. Beams generating Langmuir turbulence can be accelerated as a result of wave transformation effects or/and decay cascade processes; in both cases, the beam-driven Langmuir waves transfer part of their energy to waves of smaller wavenumbers, which can be reabsorbed later on by beam particles of higher velocities. As a consequence, beams can conserve a large part of their initial kinetic energy while propagating and radiating wave turbulence over long distances in inhomogeneous plasmas. Beam particles can also be accelerated in quasi-homogeneous plasmas due to the second cascade of wave decay, the wave transformation processes being very weak in this case. The net gains and losses of energy of a beam and the wave turbulence it radiates are calculated as a function of the average level of plasma density fluctuations and the beam parameters. The results obtained provide relevant information on the mechanism of energy reabsorption by beams radiating Langmuir turbulence in solar wind plasmas.
机译:本文研究了背景等离子体密度波动对电子束产生的Langmuir湍流动力学的影响,对于太阳能III梁和等离子体附近的典型的参数。使用基于Zakharov和Newton方程的自我一致的汉密尔顿模型,与Vlasov方法相比,呈现了几个优点。由于波形变换效应或/和腐烂级联工艺,可以加速产生Langmuir湍流的光束;在这两种情况下,光束驱动的Langmuir波将它们的能量转移到较小的波数的波浪中,这可以通过较高速度的束颗粒稍后再吸收。结果,梁可以节省其初始动能的大部分,同时在不均匀的等离子体中传播和辐射波湍流。由于波衰减的第二级联,光束颗粒也可以在准均相等离子体中加速,在这种情况下,波形变换过程非常弱。光束的净增益和能量损耗和波湍流IT辐射的函数作为等离子体密度波动和光束参数的平均水平的函数计算。获得的结果提供了有关通过梁辐射太阳风等离子体中的梁汞湍流的能量重吸收机制的相关信息。

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