具有不同相位响应曲线的电化学振荡器的最佳相位选择夹带。

IF 2.7 2区 数学 Q1 MATHEMATICS, APPLIED Chaos Pub Date : 2024-07-01 DOI:10.1063/5.0205480
Jorge Luis Ocampo-Espindola, Bharat Singhal, Jr-Shin Li, István Z Kiss
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引用次数: 0

摘要

我们研究了使用全局信号对具有不同相位响应曲线(PRC)的电化学振荡器进行诱导的问题:目标是使用最小功率波形实现所需的相位配置。在一个高度非线性的网络系统中建立所需的相位关系具有显著的异质性,例如振荡器的条件或参数不同,这带来了相当大的挑战,因为不同的单元对共同的全局诱导信号的响应不同。在这项工作中,我们在涉及电化学振荡器的动力学模型和实验中应用了优化相位选择性夹带技术,以实现相位同步状态。我们估算了振荡器在不同的电路电位和外部电阻下的 PRC,并以不同的相位配置夹带成对的振荡器和四组振荡器。我们的研究表明,在 PRC 变化较小的情况下,可以在控制设计中使用平均 PRC 来实现相位分配。然而,当 PRC 相差足够大时,就需要使用单个 PRC 来按照预期的相位关系对系统进行诱导。研究结果表明,在实际应用中,具有异质 PRC 的振荡器组件可以有效地调整到所需的相位配置。这些发现为同步模式对系统性能至关重要的生物和工程振荡器系统的应用开辟了新途径。
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Optimal phase-selective entrainment of electrochemical oscillators with different phase response curves.

We investigate the entrainment of electrochemical oscillators with different phase response curves (PRCs) using a global signal: the goal is to achieve the desired phase configuration using a minimum-power waveform. Establishing the desired phase relationships in a highly nonlinear networked system exhibiting significant heterogeneities, such as different conditions or parameters for the oscillators, presents a considerable challenge because different units respond differently to the common global entraining signal. In this work, we apply an optimal phase-selective entrainment technique in both a kinetic model and experiments involving electrochemical oscillators in achieving phase synchronized states. We estimate the PRCs of the oscillators at different circuit potentials and external resistance, and entrain pairs and small sets of four oscillators in various phase configurations. We show that for small PRC variations, phase assignment can be achieved using an averaged PRC in the control design. However, when the PRCs are sufficiently different, individual PRCs are needed to entrain the system with the expected phase relationships. The results show that oscillator assemblies with heterogeneous PRCs can be effectively entrained to desired phase configurations in practical settings. These findings open new avenues to applications in biological and engineered oscillator systems where synchronization patterns are essential for system performance.

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来源期刊
Chaos
Chaos 物理-物理:数学物理
CiteScore
5.20
自引率
13.80%
发文量
448
审稿时长
2.3 months
期刊介绍: Chaos: An Interdisciplinary Journal of Nonlinear Science is a peer-reviewed journal devoted to increasing the understanding of nonlinear phenomena and describing the manifestations in a manner comprehensible to researchers from a broad spectrum of disciplines.
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