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Nonlinear modeling and multi-scale damping characteristics of hydro-turbine regulation systems under complex variable hydraulic and electrical network structures

机译:复杂变量液压和电气网络结构下水轮机调节系统的非线性建模与多尺度阻尼特性

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摘要

In hydropower dominated power systems, low-frequency oscillations (LFO), that challenge the safe and stable operation of the system, occur from time to time. Although the study of system damping is an important way to reveal the mechanism of LFO, relevant analysis is mainly based on simplified models that consider a single scale, leading to an incomplete understanding of the phenomenon. Against this background, a cluster of hydropower units in a real power station is taken in this paper as the research object. Firstly, a refined non-linear model of the hydroturbine regulation system with the layout of three units sharing one common tailrace tunnel is established and validated based on mechanism analysis and measured data. Then, an accurate quantitative evaluation method of damping for complex systems is proposed to overcome the application limitations of traditional methods. Finally, the variation laws of the damping of a hydropower unit with the hydraulic-electrical network structures and the operating conditions, studied from the scales of hydraulic coupling and electrical coupling, respectively, reveal the influence mechanism of the hydraulic-mechanical-electrical coupling on unit damping. The results show that the increase in the complexity of the hydraulic or electrical network structure will reduce the damping of the hydropower unit, which changes from 1.3860 to -1.3223 for hydraulic factor and from 1.1869 to -0.8817 for electrical factor. The operating conditions of the adjacent units have different degrees of influence on the damping of the unit itself due to their hydraulic or electrical connections. Some measures to suppress LFO are also given.
机译:在水电主导的电力系统中,低频振荡(LFO),挑战系统的安全稳定运行,不时发生。虽然系统阻尼的研究是揭示LFO机制的重要途径,但相关分析主要基于考虑单一规模的简化模型,导致对该现象的不完全理解。在此背景下,本文作为研究对象拍摄了真实发电站中的水电单元集群。首先,基于机制分析和测量数据,建立和验证了具有三个单位的三个单位布局的水曲调调节系统的精制非线性模型。然后,提出了一种用于复杂系统的抑制的准确定量评估方法,以克服传统方法的应用局限性。最后,水电站的阻尼与液压网络结构和操作条件的变化规律,分别从液压耦合和电耦合的尺度研究,揭示了液压机电联轴器的影响机理单位阻尼。结果表明,液压或电气网络结构的复杂性的增加将减少水电站的阻尼,从1.3860至-1.3223变化为液压因子,电压为1.1869至-0.8817。由于其液压或电气连接,相邻单元的操作条件对单位本身的阻尼具有不同程度的影响。还给出了一些抑制LFO的措施。

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