论文标题
在各向异性压力平衡的线性稳定性上,现场对齐不可压缩的流动
On the linear stability of anisotropic pressure equilibria with field-aligned incompressible flow
论文作者
论文摘要
We derive a sufficient condition for the linear stability of plasma equilibria with incompressible flow parallel to the magnetic field, $\bf B$, constant mass density and anisotropic pressure such that the quantity $σ_d= μ_0(P_\parallel -P_\perp)/B^2$, where $P_\parallel$ ($P_\perp$) is the pressure tensor element parallel (垂直)至$ \ bf b $,保持恒定。该条件适用于没有几何限制的任何稳态。该条件以各向同性压力和Throumoulopoulos&Tasso(2007)中的各向同性压力和恒定密度的概括,涉及与磁性剪切,流动剪切和垂直于磁性表面的总压力变化相关的物理解释项。在这种情况下,我们证明,如果给定的平衡是线性稳定的,那么bogoyavlenskij对称转换产生的平衡也是线性稳定的,前提是这些转换涉及的参数为正。另外,我们研究了特定类别的分析平衡,研究压力各向异性,流动和旋转的影响。在这种情况下,我们发现压力各向异性和流量可能具有稳定或破坏稳定的效果。同样,具有小扭转和较大音高的螺旋构型似乎具有更有利的稳定性。
We derive a sufficient condition for the linear stability of plasma equilibria with incompressible flow parallel to the magnetic field, $\bf B$, constant mass density and anisotropic pressure such that the quantity $σ_d= μ_0(P_\parallel -P_\perp)/B^2$, where $P_\parallel$ ($P_\perp$) is the pressure tensor element parallel (perpendicular) to $\bf B$, remains constant. This condition is applicable to any steady state without geometrical restriction. The condition, generalising the respective condition for MHD equilibria with isotropic pressure and constant density derived in Throumoulopoulos & Tasso (2007), involves physically interpretable terms related to the magnetic shear, the flow shear and the variation of total pressure perpendicular to the magnetic surfaces. On the basis of this condition we prove that if a given equilibrium is linearly stable, then the ones resulting from the application of Bogoyavlenskij symmetry transformations are linearly stable too, provided that a parameter involved in those transformations is positive. In addition, we examine the impact of pressure anisotropy, flow, and torsion of a helical magnetic axis, for a specific class of analytic equilibria. In this case we find that the pressure anisotropy and the flow may have either stabilising or destabilising effects. Also, helical configurations with small torsion and large pitch seem to have more favorable stability properties.