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Chaos in the music of the spheres

机译:在球体的音乐中混乱

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The light curves (time series of the radiated energy) of most large amplitude, pulsating stars such as the well known Cepheid stars are regular. However, a smaller group of variable stars that are located next to them in the Hertzsprung-Russell diagram undergoes irregular light variations and exhibits irregular radial velocities as well. The mechanism behind this irregular behavior was a long standing mystery. A flow reconstruction technique based on the observed lightcurves of six separate stars shows that their underlying dynamics is chaotic and low dimensional (d = 4). Furthermore, we present evidence that the physical mechanism behind the behavior is the nonlinear interaction of just two pulsation eigenmodes. In a generalized Shil'nikov scenario, the pulsation energy alternates continuously, but irregularly between a lower frequency mode that is linearly unstable and thus growing, and a stable overtone that gets entrained through a low order resonance (2:1), but that wants to decay. The flow reconstruction from the stellar light curve thus yields interesting physical insight into the pulsation mechanism.
机译:最大幅度的光曲线(辐射能量的时间序列),脉动恒星,例如众所周知的Cepheid恒星是规则的。然而,在Hertzsprung-Russella图中旁边位于它们旁边的较小的变量恒星经历了不规则的光变化,并且也表现出不规则的径向速度。这种不规则行为背后的机制是一个漫长的谜团。一种基于六个单独恒星的观察电磁装置的流重建技术表明,它们的底层动态是混沌和低维(D = 4)。此外,我们提出了证据表明行为背后的物理机制是只有两个脉动特征范围的非线性相互作用。在广义的Shil'Nikov场景中,脉动能量连续交替,但在较低频率模式之间不规则地替换,这是线性不稳定的,因此越来越多的稳定且通过低阶谐振(2:1)夹带的稳定泛音,但需要腐烂。因此,恒星光曲线的流量重建产生了对脉动机构的有趣物理洞察力。

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