Statistical Properties of Solar Granulation Derived from the Soup Instrument on Spacelab 2

A. Title, T. Tarbell, K. Topka, S. Ferguson, R. Shine, S. Team
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引用次数: 278

Abstract

The Solar Optical Universal Polarimeter (SOUP) on Spacelab 2 collected movies of solar granulation completely free from atmospheric blurring, and are not degraded by pointint jitter (the pointing stability was 0.003 sec root mean square). The movies illustrate that the solar five minute oscillation has a major role in the appearance of solar granulation and that exploding granules are a common feature of the granule evolution. Using 3-D Fourier filtering techniques the oscillations were removed and it was demonstrated that the autocorrelation lifetime of granulation is a factor of two greater in magnetic field regions than in field-free quiet sun. Horizontal velocities were measured and flow patterns were observed on the scale of meso- and super granulation. In quiet regions the mean flow velocity is 370 m/s while in the magnetic regions it is about 125 m/s. It was also found that the root mean square (RMS) fluctuating horizonal velocity field is substantially greater in quiet sun than in strong magnetic field regions. By superimposing the location of exploding granules on the average flow maps it was found that they appear almost exclusively in the center of mesogranulation size flow cells. Because of the nonuniformity of the distribution of exploding granules, the evolution of the granulation pattern in mesogranule cell centers and boundaries differs fundamentally. It is clear from this study there is neither a typical granule nor a typical granule evolution.
空间实验室2号汤仪观测太阳颗粒的统计特性
空间实验室2号上的太阳光学万能偏振仪(SOUP)采集的太阳颗粒片完全不受大气模糊的影响,不受点抖动的影响(指向稳定性为0.003秒均方根)。影片说明太阳五分钟振荡在太阳颗粒的出现中起主要作用,爆炸颗粒是颗粒演化的共同特征。利用三维傅里叶滤波技术消除了振荡,并证明了在磁场区域中造粒的自相关寿命比在无场的安静太阳中大两倍。测量了水平速度,并在中、超造粒尺度上观察了流动模式。在安静区,平均流速为370 m/s,而在磁场区,平均流速约为125 m/s。研究还发现,相对于强磁场区域,静太阳区域的均方根波动水平速度场要大得多。通过在平均流图上叠加爆炸颗粒的位置,发现它们几乎全部出现在中粒大小的流细胞的中心。由于爆炸颗粒分布的不均匀性,中颗粒细胞中心和边界的肉芽形态的演变有根本的不同。从这项研究中可以清楚地看出,既没有典型的颗粒,也没有典型的颗粒演化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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