论文标题
微波反应对黑子振荡
Microwave response to sunspot oscillations
论文作者
论文摘要
我们介绍了以3-6 GHz的西伯利亚放射性仪(SRH)获得的空间分辨振荡源的首次观察。我们发现了明显的通量振荡,从AR12833发出的周期约为3、5和13分钟。 3分钟的周期性以较高的频率主导。发现明显的振荡水平取决于椎间盘上的活动区域位置,并朝向肢体缩小。在2021年6月19日的一小时间隔内详细研究了振荡。我们发现,3分钟振荡的来源位于UMBRA上方,它们的发射是非凡的极化。 5和13分钟的时间以较低频率的发射表现为2.8 GHz。具有5分钟周期性的来源位于Umbra-Penumbra边界附近和孔区域。 13分钟振荡的源位置在3.1 GHz和4.7 GHz时不同。我们发现在171a和304a中振荡源的空间位置之间的一致性。两个范围内的信号显着相关。微波振荡之间的时间延迟随着频率的降低而增加,这可以通过周期性干扰的向上传播来解释。振荡源的定位可能与不同高度下的波浪截止频率不同的磁结构有关。获得的结果表明,SRH可以在3-6 GHz带中的强度和极化通道中对振荡的空间分辨观察。
We present the first observations of spatially resolved oscillation sources obtained with the Siberian Radioheliograph (SRH) at 3-6 GHz. We have found significant flux oscillations with periods of about 3, 5 and 13 minutes emitted from AR12833. The 3-minute periodicity dominates at higher frequencies. It was found that the apparent level of oscillations depends on the active region location on the disc, and scales down towards the limbs. The oscillations were studied in detail during one hour interval on June 19, 2021. We found that sources of 3-min oscillations were located above the umbra and their emission is extraordinary polarized. The 5 and 13-min periods were manifested in emission at lower frequencies, down to 2.8 GHz. Sources with 5-min periodicity were located near the umbra-penumbra boundary and in the pore region. Positions of sources with 13-min oscillations were different at 3.1 GHz and 4.7 GHz. We found consistency between spatial location of the oscillation sources in radio and UV in 171A and 304A. There is significant correlation of signals in two ranges. Time delays between microwave oscillations increase as the frequency decreases, which can be explained by upward propagation of periodic disturbances. The localization of oscillation sources is probably related to magnetic structures with different wave cutoff frequencies at different heights. The obtained results show that SRH can provide the spatial resolved observation of the oscillations in the intensity and polarization channels in 3-6 GHz band.