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Generation of Suprathermal Electrons by Collective Processes in Collisional Plasma

机译:通过碰撞等离子体中的集体过程产生超级电子

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The ubiquity of high-energy tails in the charged particle velocity distribution functions (VDFs) observed in space plasmas suggests the existence of an underlying process responsible for taking a fraction of the charged particle population out of thermal equilibrium and redistributing it to suprathermal velocity and energy ranges. The present Letter focuses on a new and fundamental physical explanation for the origin of suprathermal electron velocity distribution function (EVDF) in a collisional plasma. This process involves a newly discovered electrostatic bremsstrahlung (EB) emission that is effective in a plasma in which binary collisions are present. The steady-state EVDF dictated by such a process corresponds to a Maxwellian core plus a quasi-inverse power-law tail, which is a feature commonly observed in many space plasma environments. In order to demonstrate this, the system of selfconsistent particle- and wave-kinetic equations are numerically solved with an initially Maxwellian EVDF and Langmuir wave spectral intensity, which is a state that does not reflect the presence of EB process, and hence not in force balance. The EB term subsequently drives the system to a new force-balanced steady state. After a long integration period it is demonstrated that the initial Langmuir fluctuation spectrum is modified, which in turn distorts the initial Maxwellian EVDF into a VDF that resembles the said core-suprathermal VDF. Such a mechanism may thus be operative at the coronal source region, which is characterized by high collisionality.
机译:在太空等离子体中观察到的带电粒子速度分布函数(VDF)中的高能量尾部的u特异性表明,存在负责将带电粒子群的一部分带出热平衡并将其重新分配给同性恋速度和能量的潜在过程。范围。本信专注于碰撞等离子体中的超级电子速度分布函数(EVDF)的新的和基本的物理解释。该过程涉及新发现的静电Bremsstrahlung(EB)发射,其在存在二元碰撞的等离子体中是有效的。由这种过程决定的稳态EVDF对应于MaxWellian核心加上准反向动力法尾,这是在许多空间等离子体环境中通常观察到的特征。为了证明这一点,自信的粒子和波动动力学方程的系统用最初的MaxWellian EVDF和Langmuir波谱强度进行了数量求解,这是不反映EB过程存在的状态,因此不生效平衡。 EB术语随后将系统驱动到新的力平衡稳态。经过一个长的集成时间,证明了初始Langmuir波动谱进行了修改,这反过来将初始MaxWellian EVDF变为类似于所述核心 - 超级VDF的VDF。因此,这种机构可以在冠状源区处操作,其特征在于高碰撞性。

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