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Design and implementation of an interconnection and damping assignment-passivity-based control for grid-integrated hybrid renewable system with energy storage

机译:基于互联和能量存储的网格集成混合再生系统的互连和阻尼分配控制的设计与实现

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This article introduces a unified Hamiltonian formulation for controlling grid-connected direct current microgrid via interconnection and damping assignment-passivity-based control. The direct current microgrid includes hydro-solar-wind hybrid renewable energy systems and battery/supercapacitor hybrid energy storage system. Hybrid renewable energy systems are integrated as a disturbed direct current source, while hybrid energy storage system is integrated via semi-active topology, where the battery is connected to the direct current bus through a bidirectional dc-to-dc converter. The proposed Hamiltonian approach allows us to design a control strategy for the bidirectional dc-to-dc converter and the grid-connected three-phase inverter to (1) reject power disturbances in the direct current bus via the supercapacitor and ensure smooth current in the battery as well as in the grid and (2) assign the system to a desired equilibrium after sharp changes. In the studied article, the stability of the system under the interconnection and damping assignment-passivity-based control controller is investigated. The interconnection and damping assignment-passivity-based control controller is compared with two conventional proportional-integral-based controllers through simulations under the MATLAB/Simulink environment. The main contributions in this article are the unified hybrid modelling for dc-to-dc power converter and grid-connected inverter using port-Hamiltonian approach, external disturbance rejection in the multi-source power system using interconnection and damping assignment-passivity-based control, and the assurance of global asymptotic stability of the closed-loop system.
机译:本文介绍了一种统一的HamiltonIAN配方,用于通过互连和阻尼分配控制的控制来控制网格连接的直流微电网。直流微电网包括水力 - 风风混合再生能源系统和电池/超级电池混合储能系统。混合可再生能源系统作为扰动的直流源集成,而混合能量存储系统通过半主动拓扑集成,其中电池通过双向DC-DC转换器连接到直流总线。提出的Hamiltonian方法允许我们设计双向DC-DC转换器的控制策略,并通过超级电容器抑制直流总线中的电力干扰并确保平稳电流电池以及网格和(2)在急剧变化后将系统分配到所需的平衡。在研究的文章中,研究了在互连和阻尼分配 - 基于控制控制器下的系统的稳定性。将基于互连和阻尼分配控制控制器与Matlab / Simulink环境下的模拟相比,与两个传统的比例积分控制器进行了比较。本文的主要贡献是使用端口 - 汉密尔顿方法,使用互连和阻尼分配控制的多源电力系统中的外部干扰抑制来实现DC-DC电力转换器和网格连接逆变器的统一混合模型以及保证闭环系统的全局渐近稳定性。

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