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Current systems of coronal loops in 3D MHD simulations

机译:3D MHD模拟中的冠状环路循环系统

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Aims. We study the magnetic field and current structure associated with a coronal loop. Through this we investigate to what extent the assumptions of a force-free magnetic field break down and where they might be justified. Methods. We analyze a three-dimensional (3D) magnetohydrodynamic (MHD) model of the solar corona in an emerging active region with the focus on the structure of the forming coronal loops. The lower boundary of this simulation is taken from a model of an emerging active region. As a consequence of the emerging magnetic flux and the horizontal motions at the surface a coronal loop forms self-consistently. We investigate the current density along magnetic field lines inside (and outside) this loop and study the magnetic and plasma properties in and around this loop. The loop is defined as the bundle of field lines that coincides with enhanced emission in extreme UV. Results. We find that the total current along the emerging loop changes its sign from being antiparallel to parallel to the magnetic field. This is caused by the inclination of the loop together with the footpoint motion. Around the loop, the currents form a complex non-force-free helical structure. This is directly related to a bipolar current structure at the loop footpoints at the base of the corona and a local reduction of the background magnetic field (i.e., outside the loop) caused by the plasma flow into and along the loop. Furthermore, the locally reduced magnetic pressure in the loop allows the loop to sustain a higher density, which is crucial for the emission in extreme UV. The action of the flow on the magnetic field hosting the loop turns out to also be responsible for the observed squashing of the loop. Conclusions. The complex magnetic field and current system surrounding it can only be modeled in 3D MHD models where the magnetic field has to balance the plasma pressure. A one-dimensional coronal loop model or a force-free extrapolation cannot capture the current system and the complex interaction of the plasma and the magnetic field in the coronal loop, despite the fact that the loop is under low- β conditions.
机译:目标。我们研究与冠状循环相关的磁场和电流结构。通过这一点,我们调查了无力磁场的假设在多大程度上破裂以及它们可能是合理的。方法。我们分析了在新出现的活动区域中的太阳能电晕的三维(3D)磁力流体(MHD)模型,其侧重于形成冠状环的结构。该模拟的较低边界来自新出现的活动区域的模型。作为新出现的磁通量和表面的水平运动,冠状回路形成自始。我们沿着内部(和外部)内的磁场线沿着磁场线进行研究,并在该环上和周围研究磁性和等离子体。循环被定义为与极端紫外线增强的发射相一致的场线束。结果。我们发现沿着新兴环路的总电流会改变其符号来反平行并平行于磁场。这是由环的倾斜引起的,与足部运动一起引起。围绕环,电流形成复杂的无力螺旋结构。这与电晕基座的环路点处的双极电流结构直接相关,以及由等离子体流入和沿着环路引起的背景磁场(即,在环外的循环外部)的局部减小。此外,环中的局部磁力压力允许环保持更高的密度,这对于极端紫外线的发射至关重要。托管循环的磁场上的流动的动作转出也负责观察到的环路的弯曲。结论。围绕其围绕的复杂磁场和电流系统只能在3D MHD模型中进行建模,其中磁场必须平衡等离子体压力。尽管环在低β条件下,但是一维冠状环形模型或力的外推不能捕获电流系统和冠状循环中的磁场的复杂相互作用。

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