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Photospheric Injection of Magnetic Helicity: Connectivity-Based Flux Density Method

机译:磁螺旋的光球注入:基于连通性的通量密度方法

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摘要

Magnetic helicity quantifies the degree to which the magnetic field in a volume is globally sheared and/or twisted. This quantity is believed to play a key role in solar activity due to its conservation property. Helicity is continuously injected into the corona during the evolution of active regions (ARs). To better understand and quantify the role of magnetic helicity in solar activity, the distribution of magnetic helicity flux in ARs needs to be studied. The helicity distribution can be computed from the temporal evolution of photospheric magnetograms of ARs such as the ones provided by SDO/HMI and Hinode/SOT. Most recent analyses of photospheric helicity flux derived a proxy to the helicity-flux density based on the relative rotation rate of photospheric magnetic footpoints. Although this proxy allows a good estimate of the photospheric helicity flux, it is still not a true helicity flux density because it does not take into account the connectivity of the magnetic field lines. For the first time, we implement a helicity density that takes this connectivity into account. To use it for future observational studies, we tested the method and its precision on several types of models involving different patterns of helicity injection. We also tested it on more complex configurations - from magnetohydrodynamics (MHD) simulations - containing quasi-separatrix layers. We demonstrate that this connectivity-based proxy is best-suited to map the true distribution of photospheric helicity injection.
机译:磁性螺旋度量化了体积中的磁场被整体剪切和/或扭曲的程度。由于其保护性质,该量被认为在太阳活动中起关键作用。在活动区域​​(ARs)的演化过程中,螺旋被连续注入电晕。为了更好地理解和量化磁螺旋在太阳活动中的作用,需要研究AR中磁螺旋通量的分布。可以从AR的光球磁图的时间演变(例如SDO / HMI和Hinode / SOT提供的那些)计算螺旋度分布。对光球螺旋通量的最新分析基于光球磁性脚点的相对旋转速率推导了螺旋通量密度。尽管此代理可以很好地估计光球通量,但由于它未考虑磁场线的连通性,因此仍然不是真正的通量密度。我们首次实现了将这种连接性考虑在内的螺旋密度。为了将其用于未来的观察研究,我们在涉及不同螺旋注入模式的几种类型的模型上测试了该方法及其精度。我们还在磁流体动力学(MHD)模拟中对更复杂的配置进行了测试,其中包含准分离层。我们证明了这种基于连接的代理最适合于映射光球螺旋度注入的真实分布。

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