论文标题

太阳能和恒星大气加热的通用缩放定律

Universal Scaling Laws for Solar and Stellar Atmospheric Heating

论文作者

Toriumi, Shin, Airapetian, Vladimir S.

论文摘要

阳光和阳光恒星通常拥有数百万凯文氏冠和10,000凯文蛋白的色球球。这些极热气体会产生X射线和极端的紫外线排放,可能会影响(EXO)行星气氛的侵蚀和化学,从而影响了可居住性的气候和条件。但是,冠状和色圈加热的机制仍然很少了解。虽然磁场很可能在向上驱动和运输能量方面起着关键作用,但尚不清楚是否可以以统一的方式描述太阳的大气加热机理和活跃的太阳状恒星。为此,我们报告了对太阳能和恒星大气对在广泛温度范围内表面磁通量的反应的系统调查。通过分析太阳的10年多波长的概要观测,我们揭示了辐照度和磁通量显示出与指数从上层降低到次级降低的幂律关系,从电晕到染色体。此外,这种表明大气加热效率的趋势可以扩展到阳光状的恒星。我们还发现,幂律指数具有太阳周期的依赖性,在活动中,它在最大活动下变得最小,这可能是由于大气加热的饱和度所致。我们的研究提供了观察性证据,表明大气加热的机理在太阳和阳光恒星中是普遍的,无论年龄或活动如何。

The Sun and sun-like stars commonly host the multi-million-Kelvin coronae and the 10,000-Kelvin chromospheres. These extremely hot gases generate X-ray and Extreme Ultraviolet emissions that may impact the erosion and chemistry of (exo)planetary atmospheres, influencing the climate and conditions of habitability. However, the mechanism of coronal and chromospheric heating is still poorly understood. While the magnetic field most probably plays a key role in driving and transporting energy from the stellar surface upwards, it is not clear if the atmospheric heating mechanisms of the Sun and active sun-like stars can be described in a unified manner. To this end, we report on a systematic survey of the responses of solar and stellar atmospheres to surface magnetic flux over a wide range of temperatures. By analyzing 10 years of multi-wavelength synoptic observations of the Sun, we reveal that the irradiance and magnetic flux show power-law relations with an exponent decreasing from above- to sub-unity as the temperature decreases from the corona to the chromosphere. Moreover, this trend indicating the efficiency of atmospheric heating can be extended to sun-like stars. We also discover that the power-law exponent has a solar cycle dependence, where it becomes smallest at activity maximum, probably due to the saturation of atmospheric heating. Our study provides observational evidence that the mechanism of atmospheric heating is universal among the Sun and sun-like stars, regardless of age or activity.

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