论文标题
血浆中的快速和慢速磁性波的动力学,并具有热误症
Dynamics of fast and slow magnetoacoustic waves in plasma slabs with thermal misbalance
论文作者
论文摘要
太阳大气的不均匀性以及存在非绝热过程(例如辐射冷却和未指定的加热)可以显着影响磁声(MA)波的动力学和性质。为了解决这些因素在MA波的分散性质上的共同影响,我们认为是由热活性等离子体组成的单个磁板。使用扰动理论,我们获得了一个微分方程,该方程式决定了二维扰动的动力学。应用强磁结构的假设,我们得出了香肠和扭结MA模式的分散关系。进行了冠状条件的分散关系的数值解,以研究非均匀性和热误误之间的相互作用。对于考虑的加热情况,可以获得香肠和扭结慢速波的相位速度在长波长极限下受到热误的高度影响。慢波耗散所获得的特征时间尺度与在电晕中观察到的波周期一致。同时,快速波的相位速度不受热误的影响。磁性结构的几何形状仍然是快速波的主要分散机制。我们的估计表明,在冠状条件下,快速波的耗散比慢波的耗散弱。获得的结果对于使用磁性波不仅作为估计等离子参数的工具,而且作为估计非绝热过程的工具至关重要。
Non-uniformity of the solar atmosphere along with the presence of non-adiabatic processes such as radiation cooling and unspecified heating can significantly affect the dynamics and properties of magnetoacoustic (MA) waves. To address the co-influence of these factors on the dispersion properties of MA waves, we considered a single magnetic slab composed of the thermally active plasma. Using the perturbation theory, we obtained a differential equation that determines the dynamics of the two-dimensional perturbations. Applying the assumption of strong magnetic structuring, we derived the dispersion relations for the sausage and kink MA modes. The numerical solution of the dispersion relations for the coronal conditions was performed to investigate the interplay between the non-uniformity and the thermal misbalance. For the heating scenario considered, it was obtained that the phase speed of both the sausage and kink slow MA waves is highly affected by the thermal misbalance in the long wavelength limit. The obtained characteristic timescales of the slow waves dissipation coincide with the periods of waves observed in the corona. Simultaneously, the phase speed of the fast waves is not affected by the thermal misbalance. The geometry of the magnetic structure still remains the main dispersion mechanism for the fast waves. Our estimation reveals that dissipation of the fast waves is weaker than dissipation of the slow waves in the coronal conditions. The obtained results are of importance for using the magnetoacoustic waves not only as a tool for estimating plasma parameters, but also as a tool for estimating the non-adiabatic processes.