论文标题
太阳活性区线性极化的螺旋力代理
Helicity proxies from linear polarisation of solar active regions
论文作者
论文摘要
据信,α效应在太阳磁场的产生中起关键作用。对其在太阳能发电机中的重要性的基本测试是在两个半球和小规模和大尺度上寻找相反符号的磁性螺旋性。然而,由于无法从太阳光谱的观察结果完全推断出磁场向量的磁性螺旋性受到损害,这是由于光谱图观测值所谓的“ PI歧义”引起的。我们将线性极化分解为平均值和奇偶元E和B极化,它们不受“ PI歧义”的影响。此外,我们研究B的空间傅立叶光谱与均衡数量(例如E或温度t)的相关性是否是太阳磁场的磁性螺旋性的强大代理。我们分析了太阳能动力学观测台上被热震和磁成像仪观察到的活动区域的极化测量。理论可以预测,在统计上,有效区域的磁性螺旋性在两个半球中具有相反的迹象。然后,我们计算奇偶校验e b和t b的相关性,并根据活性区域的半球测试其符号的系统偏好。我们发现:(I)E B和T B相关性是磁性螺旋性的可靠代理,当从线性极化测量值远离光谱线芯上计算时,(ii)E极化将其符号逆转接近线芯的符号。我们的分析表明,法拉第旋转对计算的平等-ODD相关性没有重大影响。线性极化的EB分解似乎是独立于“ PI歧义”的磁性螺旋性的良好代理。这使我们可以直接从极化测量中直接推断磁性螺旋度。
The alpha effect is believed to play a key role in the generation of the solar magnetic field. A fundamental test for its significance in the solar dynamo is to look for magnetic helicity of opposite signs in the two hemispheres, and at small and large scales. However, measuring magnetic helicity is compromised by the inability to fully infer the magnetic field vector from observations of solar spectra, caused by what is known as the "pi ambiguity" of spectropolarimetric observations. We decompose linear polarisation into parity-even and parity-odd E and B polarisations, which are not affected by the "pi ambiguity". Furthermore, we study whether the correlations of spatial Fourier spectra of B and parity-even quantities such as E or temperature T are a robust proxy for magnetic helicity of solar magnetic fields. We analyse polarisation measurements of active regions observed by the Helioseismic and Magnetic Imager on board the Solar Dynamics observatory. Theory predicts the magnetic helicity of active regions to have, statistically, opposite signs in the two hemispheres. We then compute the parity-odd E B and T B correlations, and test for systematic preference of their sign based on the hemisphere of the active regions. We find that: (i) E B and T B correlations are a reliable proxy for magnetic helicity, when computed from linear polarisation measurements away from spectral line cores, and (ii) E polarisation reverses its sign close to the line core. Our analysis reveals Faraday rotation to not have a significant influence on the computed parity-odd correlations. The EB decomposition of linear polarisation appears to be a good proxy for magnetic helicity independent of the "pi ambiguity". This allows us to routinely infer magnetic helicity directly from polarisation measurements.