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Control of coupled oscillator networks with application to microgrid technologies

机译:耦合振荡器网络的控制及其在微电网技术中的应用

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摘要

The control of complex systems and network-coupled dynamical systems is a topic of vital theoretical importance in mathematics and physics with a wide range of applications in engineering and various other sciences. Motivated by recent research into smart grid technologies, we study the control of synchronization and consider the important case of networks of coupled phase oscillators with nonlinear interactions—a paradigmatic example that has guided our understanding of self-organization for decades. We develop a method for control based on identifying and stabilizing problematic oscillators, resulting in a stable spectrum of eigenvalues, and in turn a linearly stable synchronized state. The amount of control, that is, number of oscillators, required to stabilize the network is primarily dictated by the coupling strength, dynamical heterogeneity, and mean degree of the network, and depends little on the structural heterogeneity of the network itself.
机译:复杂系统和网络耦合动力系统的控制是数学和物理学中至关重要的理论主题,在工程学和其他各种科学中都有广泛的应用。受最近对智能电网技术研究的推动,我们研究了同步控制,并考虑了具有非线性相互作用的耦合相位振荡器网络的重要案例,这是一个指导我们数十年来对自组织理解的范例。我们开发了一种基于识别和稳定有问题的振荡器的控制方法,从而产生稳定的特征值频谱,进而实现线性稳定的同步状态。稳定网络所需的控制量(即,振荡器的数量)主要由耦合强度,动态异质性和网络的平均程度决定,而很少取决于网络本身的结构异质性。

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