Energy-based hybrid excitation control for synchronous generators

W. Qiao, Qing Hui
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引用次数: 9

Abstract

This paper presents an energy-based hybrid control, which replaces the traditional automatic voltage regulator (AVR) for excitation control of a synchronous generator connected to an infinite power system. The proposed controller is based on energy representation of the power system by using a port-controlled Hamiltonian form. The controller uses a hierarchical hybrid architecture characterized by continuous-time dynamics at the lower level of the hierarchy and logical decision-making units at the higher level of the hierarchy. The lower-level units, i.e., the subcontrollers, are each designed for a power system operating mode and directly interact with the power system to be controlled; while the higher-level decision-making units perform logical checks that identify system mode of operation and activates the corresponding lower-level unit; the activated lower-level unit then executes continuous control actions for the power system. Consequently, the controller can adapt to different power system operating modes. Simulation studies are carried out to show the effectiveness of the proposed controller for excitation control of the synchronous generator.
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基于能量的同步发电机混合励磁控制
本文提出了一种基于能量的混合控制方法,以取代传统的自动电压调节器(AVR)来控制与无限电力系统相连的同步发电机的励磁。所提出的控制器是基于电力系统的能量表示,使用端口控制的哈密顿形式。控制器采用层次混合体系结构,其特点是在层次结构的较低层次上采用连续时间动力学,在层次结构的较高层次上采用逻辑决策单元。下级单元即子控制器,每一个子控制器都是针对一种电力系统运行方式设计的,并与被控电力系统直接交互;上级决策单位进行逻辑检查,确定系统运行模式并激活相应的下级单位;被激活的下层单元然后对电力系统执行连续的控制动作。因此,该控制器可以适应不同的电力系统运行模式。仿真研究表明了该控制器对同步发电机励磁控制的有效性。
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