Wilson Dan, Faramarzi Sadegh, Moehlis Jeff, Tinsley Mark R, Showalter Kenneth
Department of Electrical Engineering and Computer Science, University of Tennessee, Knoxville, Tennessee 37996, USA.
C. Eugene Bennett Department of Chemistry, West Virginia University, Morgantown, West Virginia 26506-6045, USA.
Chaos. 2018 Dec;28(12):123114. doi: 10.1063/1.5049475.
Synchronous behavior of a population of chemical oscillators is analyzed in the presence of both weak and strong coupling. In each case, we derive upper bounds on the critical coupling strength which are valid for arbitrary populations of nonlinear, heterogeneous oscillators. For weak perturbations, infinitesimal phase response curves are used to characterize the response to coupling, and graph theoretical techniques are used to predict synchronization. In the strongly perturbed case, we observe a phase dependent perturbation threshold required to elicit an immediate spike and use this behavior for our analytical predictions. Resulting upper bounds on the critical coupling strength agree well with our experimental observations and numerical simulations. Furthermore, important system parameters which determine synchronization are different in the weak and strong coupling regimes. Our results point to new strategies by which limit cycle oscillators can be studied when the applied perturbations become strong enough to immediately reset the phase.
在存在弱耦合和强耦合的情况下,对一群化学振荡器的同步行为进行了分析。在每种情况下,我们都推导出了临界耦合强度的上限,这些上限对任意数量的非线性、异质振荡器群体都是有效的。对于弱扰动,使用无穷小相位响应曲线来表征对耦合的响应,并使用图论技术来预测同步。在强扰动情况下,我们观察到引发即时尖峰所需的相位相关扰动阈值,并将此行为用于我们的分析预测。临界耦合强度的所得上限与我们的实验观察和数值模拟结果非常吻合。此外,在弱耦合和强耦合 regimes 中,决定同步的重要系统参数是不同的。我们的结果指出了新的策略,当施加的扰动变得足够强以立即重置相位时,可以通过这些策略研究极限环振荡器。