Oscillation and The Suppression Strategy in Microgrid: A Review

Zheng Lan, Wei-Zhe Jiang, Changmao Hou, W. Diao
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Abstract

As people's demands for the environment and future development, new energy sources such as wind energy, and solar energy have become the trend of the times. At the same time, due to the introduction of clean energy, power electronics and switching devices in the power system are heavily invested in the power network. The investment in areas above has made the stability of the power system suffering more tests, and the instability and oscillation of the power system have intensified. Therefore, this paper first analyzes the mathematical model of power system oscillation. The existing oscillation causes and suppression methods of traditional power systems are summarized. Then the causes of the micro-grid oscillation of the distributed power supply with high permeability are analyzed in detail. The difference from the traditional power system oscillation is that the traditional power network oscillation is caused by the shafting torsional vibration of the rotating electrical machine. The vibration reacts, which may cause the damping torque of the unit in the corresponding torsional vibration mode to weaken or even become negative, causing oscillation. Or rotary electric machines (including synchronous/asynchronous power generation/motors) and power electronic converters may exhibit an "induction generator/negative resistance" effect on the electrical oscillation mode under certain operating conditions, when the negative resistance exceeds the total positive resistance of the grid, resulting in The LC oscillates and diverge. The reason for the power electronic oscillation is the coupling oscillation between the power electronic converters or the network generated by the interaction with the AC grid. This kind of oscillation is difficult to find the existing fixed model to apply, because the power electronic device has a fast response speed and low Inertia, unlike traditional motors, oscillations are more likely to occur in high frequency bands and have more features. Based on this, different research methods and speculations on the causes of microgrid oscillations at home and abroad are summarized. Due to different causes, the methods used to suppress system oscillations are summarized and described. Finally, the content of the full text is summarized. Prospects for the future development of microgrid oscillation research.
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微电网振荡与抑制策略综述
随着人们对环境和未来发展的要求,风能、太阳能等新能源已成为大势所趋。同时,由于清洁能源的引入,电力系统中的电力电子和开关设备在电网中投入了大量资金。上述方面的投资使电力系统的稳定性受到更多的考验,电力系统的不稳定和振荡加剧。因此,本文首先分析了电力系统振荡的数学模型。总结了传统电力系统存在的振荡原因及抑制方法。然后详细分析了高磁导率分布式电源微网振荡的原因。与传统的电力系统振荡不同的是,传统的电网振荡是由旋转电机的轴系扭转振动引起的。振动发生反应,可能使机组在相应扭转振动模式下的阻尼力矩减弱甚至变为负值,引起振荡。或旋转电机(包括同步/异步发电/电机)和电力电子变流器在一定运行条件下,当负电阻超过电网总正电阻时,可能对电振荡模式表现出“感应发电机/负电阻”效应,导致LC振荡发散。电力电子振荡的原因是电力电子变流器之间或电网与交流电网相互作用产生的耦合振荡。这种振荡很难找到现有的固定模型来应用,因为电力电子器件响应速度快,惯量小,与传统电机不同,振荡更容易发生在高频段,具有更多的特征。在此基础上,总结了国内外对微网振荡成因的不同研究方法和推测。由于不同的原因,总结和描述了用于抑制系统振荡的方法。最后,对全文的内容进行了总结。展望了微电网振荡研究的未来发展。
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