Research of Virtual Synchronous Machine Control Strategy of Hybrid Renewable Energy in Microgrid

Author(s):  
Qingguang Yu ◽  
Zhicheng Jiang ◽  
Mengchu Zhao ◽  
Yuming Liu ◽  
Gaoxiang Long ◽  
...  
Energies ◽  
2019 ◽  
Vol 12 (6) ◽  
pp. 1169 ◽  
Author(s):  
Huiyu Miao ◽  
Fei Mei ◽  
Yun Yang ◽  
Hongfei Chen ◽  
Jianyong Zheng

A virtual synchronous machine (VSM) is a converter which, compared to other types of converters, has more friendly interactions with the power grid because it is able to simulate the external characteristics of a synchronous machine, which can provide virtual inertia and damping. When the grid voltage is unbalanced, there will be negative sequence current and power oscillations. There will also be double-frequency ripples on the DC bus, which affect the normal operation of the DC power source or load. In order to solve these problems, a comprehensive control strategy is proposed in this paper. The principle of a VSM operated as a current source converter, also called VISMA, is used in the design. A complex coefficient filter is applied to separate the positive and negative sequence components of the grid voltage. By analyzing the reasons of power oscillations under unbalanced voltage, the electrical simulation part of the VSM is improved to achieve several objectives: to suppress negative sequence current and DC voltage ripples. Additionally, the rated voltage in the reactive control part is adaptively adjusted to stabilize the system. The validity of the proposed control strategy is verified by simulation and experiment.


2021 ◽  
Vol 2021 ◽  
pp. 1-20
Author(s):  
Z. Jai Andaloussi ◽  
A. Raihani ◽  
A. El Magri ◽  
R. Lajouad ◽  
A. El Fadili

This article deals with a hybrid renewable energy conversion system (HRECS) interconnected to the three-phase grid in association with their power conversion components, i.e., AC/DC rectifier and DC/AC inverter. The HRECS is built around a permanent magnet synchronous wind turbine generator and a photovoltaic energy conversion system. Comparing to traditional control methods, a new multiobjective control strategy is developed to enhance system performances. This makes it possible to account in addition to optimal turbine speed regulation and PV-MPPT and three other important control objectives such as DC-link voltage regulation and the injected reactive power in the grid. To achieve these objectives, a novel control strategy is developed, based on a nonlinear model of the whole “converters-generators” association. The robustness and the stability analysis of the system have been proved using the Lyapunov theory and precisely the backstepping control and the sliding mode control. The performances of the proposed controllers are formally analyzed with respect to standard control solutions illustrated through simulation.


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