论文标题

基于非平面磁性GES太阳等离子体稳定性

Non-planar magnetoactive GES-based solar plasma stability

论文作者

Das, Souvik, Karmakar, Pralay Kumar

论文摘要

实验室等离子体壁相互作用的基于基于天体物理的重力 - 电压鞘鞘(GES)模型在方法论上用于研究在存在湍流效应的情况下磁性双氟富集太阳等离子体系统的动态稳定性。球形对称的GES模型形式主义伴随着太阳内部等离子体(SIP,内部自我造成的,有限的)和太阳风等离子体(SWP,SWP,外部侧重点填充,无界),通过扩散的太阳能表面边界(SSB)。正常的球形模式ANSATZ导致广义线性二次分散关系,描述了SIP和SWP量表上的模态波动。一个建设性的数值平台揭示了修改后的模式激发的分散和非分散模态特征的演变。借助精确的分析形状匹配以前报道的在平面波近似上建立的结果,将衍生的非平面分散法定律的可靠性进行了凝结。发现热稳定的GES稳定性主要取决于磁场,平衡血浆密度和等离子体温度。据推测,分散特征在反静电域的自我填充域中更为明显。磁性 - 热相互作用引入了对SIP(SWP)的减速(加速)和破坏稳定(稳定)的影响,等等。最后,我们简要地表明了拟议的分析的适用性,以根据文献中报道的最近的天文观测场景从集体等离子体的动力学观点中理解各种热震活动。

A laboratory plasma-wall interaction-based astrophysical gravito-electrostatic sheath (GES) model is methodologically applied to study the dynamic stability of the magnetoactive bi-fluidic solar plasma system in the presence of turbulence effect. The spherically symmetric GES-model formalism couples the solar interior plasma (SIP, internally self-gravitating, bounded) and the solar wind plasma (SWP, externally point-gravitating, unbounded) through the diffused solar surface boundary (SSB). A normal spherical mode ansatz results in a generalized linear quadratic dispersion relation depicting the modal fluctuations on both the SIP and SWP scales. A constructive numerical platform reveals the evolution of both dispersive and non-dispersive modal features of the modified-GES mode excitations. The reliability of the derived non-planar dispersion laws is concretized with the help of an exact analytic shape matching the previously reported results founded on the plane-wave approximation. It is found that the thermo-statistical GES stability depends mainly on the magnetic field, equilibrium plasma density, and plasma temperature. It is speculated that the dispersive features are more pronounced in the self-gravitational domains against the electrostatic ones. The magneto-thermal interplay introduces decelerating (accelerating) and destabilizing (stabilizing) influences on the SIP (SWP), and so forth. At last, we briefly indicate the applicability of the proposed analysis to understand diverse helioseismic activities from the collective plasma dynamical viewpoint in accordance with the recent astronomical observational scenarios reported in the literature.

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