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Can We Determine Electric Fields and Poynting Fluxes from Vector Magnetograms and Doppler Measurements?

机译:我们能否从矢量磁图和多普勒测量中确定电场和Poynting通量?

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摘要

The availability of vector-magnetogram sequences with sufficient accuracy and cadence to estimate the temporal derivative of the magnetic field allows us to use Faraday's law to find an approximate solution for the electric field in the photosphere, using a Poloidal-Toroidal Decomposition (PTD) of the magnetic field and its partial time derivative. Without additional information, however, the electric field found from this technique is under-determined - Faraday's law provides no information about the electric field that can be derived from the gradient of a scalar potential. Here, we show how additional information in the form of line-of-sight Doppler-flow measurements, and motions transverse to the line-of-sight determined with ad-hoc methods such as local correlation tracking, can be combined with the PTD solutions to provide much more accurate solutions for the solar electric field, and therefore the Poynting flux of electromagnetic energy in the solar photosphere. Reliable, accurate maps of the Poynting flux are essential for quantitative studies of the buildup of magnetic energy before flares and coronal mass ejections.
机译:向量磁图序列具有足够的准确性和节奏来估算磁场的时间导数,因此我们可以使用法拉第定律,通过以下方法来求得光圈中电场的近似解:磁场及其部分时间导数。但是,如果没有其他信息,该技术发现的电场就无法确定-法拉第定律不提供有关可以从标量电势梯度得出的电场信息。在这里,我们展示了如何将视线多普勒流量测量形式的附加信息以及通过特定方法(例如局部相关性跟踪)确定的与视线垂直的运动与PTD解决方案相结合为太阳电场提供更准确的解决方案,从而为太阳光球提供电磁能量的珀因廷通量。可靠,准确的Poynting通量图对于定量研究耀斑和日冕物质抛射之前磁能的积累至关重要。

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