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引力模式可用于区分正在进行氢燃烧和氦燃烧的红巨星。

Gravity modes as a way to distinguish between hydrogen- and helium-burning red giant stars.

机构信息

Sydney Institute for Astronomy, School of Physics, University of Sydney, New South Wales 2006, Australia.

出版信息

Nature. 2011 Mar 31;471(7340):608-11. doi: 10.1038/nature09935.

Abstract

Red giants are evolved stars that have exhausted the supply of hydrogen in their cores and instead burn hydrogen in a surrounding shell. Once a red giant is sufficiently evolved, the helium in the core also undergoes fusion. Outstanding issues in our understanding of red giants include uncertainties in the amount of mass lost at the surface before helium ignition and the amount of internal mixing from rotation and other processes. Progress is hampered by our inability to distinguish between red giants burning helium in the core and those still only burning hydrogen in a shell. Asteroseismology offers a way forward, being a powerful tool for probing the internal structures of stars using their natural oscillation frequencies. Here we report observations of gravity-mode period spacings in red giants that permit a distinction between evolutionary stages to be made. We use high-precision photometry obtained by the Kepler spacecraft over more than a year to measure oscillations in several hundred red giants. We find many stars whose dipole modes show sequences with approximately regular period spacings. These stars fall into two clear groups, allowing us to distinguish unambiguously between hydrogen-shell-burning stars (period spacing mostly ∼ 50 seconds) and those that are also burning helium (period spacing ∼ 100 to 300 seconds).

摘要

红巨星是演化后的恒星,其核心的氢已耗尽,而在外壳中燃烧氢。一旦红巨星演化到足够的程度,核心中的氦也会发生核聚变。我们对红巨星的理解还存在一些悬而未决的问题,包括在氦点火前表面损失的质量以及由于自转和其他过程引起的内部混合的数量。由于我们无法区分核心中燃烧氦的红巨星和仅在外壳中燃烧氢的红巨星,因此进展受到了阻碍。星震学提供了一种前进的方法,它是一种利用恒星自然振荡频率探测内部结构的强大工具。在这里,我们报告了对红巨星重力模式周期间隔的观测结果,这些结果可以区分不同的演化阶段。我们使用开普勒太空船在一年多的时间里获得的高精度测光数据,测量了几百颗红巨星的振荡。我们发现许多恒星的偶极模式显示出具有近似规则周期间隔的序列。这些恒星分为两个明显的群组,使我们能够明确地区分仅在外壳中燃烧氢的恒星(周期间隔主要为∼50 秒)和也在燃烧氦的恒星(周期间隔为∼100 至 300 秒)。

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