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首页> 外文期刊>IEEE Transactions on Industry Applications >Solving Turbine Governor Instability at Low-Load Conditions
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Solving Turbine Governor Instability at Low-Load Conditions

机译:解决低负载条件下的涡轮调速器不稳定性

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摘要

During routine commissioning of a steam turbine load-sharing system, serious low-load frequency instabilities were discovered. These instabilities were causing undamped oscillations in power and frequency to escalate until protective relays tripped a generator offline. Root-cause investigation led to a robust solution and some rather startling revelations about the implications of electronic governor controls and small (micro) grids. There are basically two ways to form an electronic governor control loop with droop: 1) speed control with a MW droop; or 2) MW control with a speed droop. The analysis in this paper shows one method to be superior under low-load conditions. The results of this analysis have implications for the frequency stability of the power grid today. Microgrids, green energy, distributed generation, and isolated industrial plants can all be susceptible to this instability. The authors estimate that approximately 60% of today's generation is prone to destabilize the power system frequency under low-load conditions.
机译:在汽轮机负荷共享系统的常规调试过程中,发现了严重的低负荷频率不稳定性。这些不稳定性导致功率和频率的无阻尼振荡升级,直到保护继电器使发电机脱机。根本原因调查导致了一个健壮的解决方案,以及有关电子调速器控件和小型(微型)电网的含义的一些令人震惊的启示。基本上有两种方式形成带下垂的电子调速器控制回路:1)带有MW下垂的速度控制;或2)带有速度下降的MW控制。本文的分析表明,一种方法在低负载条件下是优越的。分析的结果对当今电网的频率稳定性有影响。微电网,绿色能源,分布式发电和孤立的工厂都容易受到这种不稳定的影响。作者估计,在低负载条件下,当今一代人中约有60%的人倾向于破坏电力系统的频率。

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