Wolfrum Matthias, Omel'chenko Oleh E, Sieber Jan
Weierstrass Institute, Mohrenstrasse 39, Berlin 10117, Germany.
College of Engineering, Mathematics and Physical Sciences, University of Exeter, North Park Road, Exeter EX4 4QF, United Kingdom.
Chaos. 2015 May;25(5):053113. doi: 10.1063/1.4921297.
We study a system of phase oscillators with nonlocal coupling in a ring that supports self-organized patterns of coherence and incoherence, called chimera states. Introducing a global feedback loop, connecting the phase lag to the order parameter, we can observe chimera states also for systems with a small number of oscillators. Numerical simulations show a huge variety of regular and irregular patterns composed of localized phase slipping events of single oscillators. Using methods of classical finite dimensional chaos and bifurcation theory, we can identify the emergence of chaotic chimera states as a result of transitions to chaos via period doubling cascades, torus breakup, and intermittency. We can explain the observed phenomena by a mechanism of self-modulated excitability in a discrete excitable medium.
我们研究了一个环形结构中具有非局部耦合的相位振荡器系统,该系统支持相干和非相干的自组织模式,即所谓的奇异态。引入一个将相位滞后与序参量相连的全局反馈回路,我们也能在振荡器数量较少的系统中观察到奇异态。数值模拟显示了由单个振荡器的局部相位滑移事件组成的各种各样的规则和不规则模式。使用经典有限维混沌和分岔理论的方法,我们可以确定混沌奇异态的出现是通过倍周期级联、环面破裂和间歇性向混沌转变的结果。我们可以用离散可激发介质中的自调制兴奋性机制来解释所观察到的现象。