Cremaschini Claudio, Stuchlík Zdeněk
Institute of Physics, Faculty of Philosophy and Science, Silesian University in Opava, Bezručovo náměstí 13, CZ-74601 Opava, Czech Republic.
Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Apr;87(4):043113. doi: 10.1103/PhysRevE.87.043113. Epub 2013 Apr 25.
Current-carrying string loops are adopted in astrophysics to model the dynamics of isolated flux tubes of magnetized plasma expected to arise in the gravitational field of compact objects, such as black holes. Recent studies suggest that they could provide a framework for the acceleration and collimation of jets of plasma observed in these systems. However, the problem remains of the search of physical mechanisms which can consistently explain the occurrence of such plasma toroidal structures characterized by nonvanishing charge currents and are able to self-generate magnetic loops. In this paper, the problem is addressed in the context of Vlasov-Maxwell theory for nonrelativistic collisionless plasmas subject to both gravitational and electromagnetic fields. A kinetic treatment of quasistationary axisymmetric configurations of charged particles exhibiting epicyclic motion is obtained. Explicit solutions for the species equilibrium phase-space distribution function are provided. These are shown to have generally a non-Maxwellian character and to be characterized by nonuniform fluid fields and temperature anisotropy. Calculation of the relevant fluid fields and analysis of the Ampere equation then show the existence of nonvanishing current densities. As a consequence, the occurrence of a kinetic dynamo is proved, which can explain the self-generation of both azimuthal and poloidal magnetic fields by the plasma itself. This mechanism can operate in the absence of instabilities, turbulence, or accretion phenomena and is intrinsically kinetic in character. In particular, several kinetic effects contribute to it, identified here with finite Larmor radius, diamagnetic and energy-correction effects together with temperature anisotropy, and non-Maxwellian features of the equilibrium distribution function.
在天体物理学中,载流弦环被用于模拟磁化等离子体孤立磁通管的动力学,这种磁通管预计会出现在诸如黑洞等致密天体的引力场中。最近的研究表明,它们可以为这些系统中观测到的等离子体喷流的加速和准直提供一个框架。然而,仍然存在一个问题,即寻找能够连贯解释这种以非零电荷电流为特征且能够自产生磁环的等离子体环形结构出现的物理机制。在本文中,该问题是在非相对论无碰撞等离子体的弗拉索夫 - 麦克斯韦理论背景下解决的,该等离子体同时受到引力场和电磁场的作用。得到了对表现出周转运动的带电粒子准静态轴对称构型进行动力学处理的结果。提供了粒子平衡相空间分布函数的显式解。结果表明这些解通常具有非麦克斯韦特性,并且以非均匀流场和温度各向异性为特征。对相关流场的计算以及对安培方程的分析随后表明存在非零电流密度。因此,证明了动力学发电机的存在,它可以解释等离子体自身产生方位向和极向磁场的现象。这种机制可以在不存在不稳定性、湍流或吸积现象的情况下运行,并且本质上是动力学性质的。特别是,有几种动力学效应促成了这一机制,这里确定为有限拉莫尔半径、抗磁和能量校正效应以及温度各向异性,还有平衡分布函数的非麦克斯韦特征。