超临界巴布科克-莱顿动力学中的非线性、时间延迟和大极大值

Christian Thibeault, Loïc Miara, Paul Charbonneau
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摘要

太阳活动的百年尺度和千年尺度变化的物理起源仍然不甚明了。尽管鉴于太阳对流区的湍流性质,太阳动力的随机波动是不可避免的,但宇宙生成放射性同位素记录所揭示的准周期性长时间尺度调制却暗示了一个确定性过程。在本文中,我们研究了基于巴布科克-莱顿机制的两个太阳周期模型的非线性行为,特别强调了在中度到强烈超临界动力状态下的确定性振幅调制模式。虽然表述方式完全不同,但这两个模型都显示出共同的长时间尺度调制模式,产生于这些通量传输动力固有的时间延迟动力学与巴布科克-莱顿极性场再生机制的阈值非线性之间的相互作用。特别是,我们证明了在超临界状态下存在多个并存的动力分支,每个分支在动力数的很大范围内都保留了一个有限大小的吸引力盆地。通过引入相干时间较短的低振幅随机噪声,证明从一个分支过渡到另一个分支是可能的。在此基础上,我们提出了一种新的物理方案,有可能解释太阳活动大极小值和大极小值的出现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nonlinearity, time delay, and Grand Maxima in supercritical Babcock-Leighton Dynamos
The physical origin of centennial and millennial-scale variations in solar activity remains ill-understood. Although stochastic fluctuations of the solar dynamo are unavoidable in view of the turbulent nature of the solar convection zone, the quasiperiodic long timescale modulations revealed by the cosmogenic radioisotope records are suggestive of a deterministic process. In this paper, we investigate the nonlinear behavior of two solar cycle models based on the Babcock-Leighton mechanism, with particular emphasis on deterministic amplitude modulation patterns materializing in the moderately to strongly supercritical dynamo regimes. Although formulated quite differently, both models show common long timescale modulation patterns arising from the interaction between the time-delay dynamics inherent to these flux transport dynamos, with the threshold non-linearity characterizing the Babcock-Leighton mechanism of poloidal field regeneration. In particular, we demonstrate the existence of multiple co-existing dynamo branches in the supercritical regime, each retaining a finite-sized basin of attraction over a substantial range in dynamo number. Transition from one branch to another is shown to be possible via the introduction of low-amplitude stochastic noise with short coherence time. On this basis, we propose a novel physical scenario potentially accounting for the occurrence of both Grand Minima and Maxima of solar activity.
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