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Improving Transient Stability in a Grid-Connected Squirrel-Cage Induction Generator Wind Turbine System Using a Fuzzy Logic Controller

机译:使用模糊逻辑控制器改善并网鼠笼式感应发电机风力发电机系统的暂态稳定性

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A common problem in wind power plants involves fixed-speed wind turbines. In fact, being equipped with a squirrel-cage induction generator (SCIG), they tend to drain a relevant amount of reactive power from the grid, potentially causing voltage drops and possible voltage instability. To improve SCIG power quality and transient stability, this paper investigates a new control strategy for pitch angle control based on proportional-integral (PI) controller and a fuzzy logic controller (FLC), considering both normal and fault ride-through (FRT) schemes. In the literature, often, the mechanical torque output is assumed constant for a specific wind speed. This might not be accurate, because the mechanical torque-speed typical of a wind turbine depends also on the power coefficient or pitch angle. In this paper, an analytic model of transient stability is proposed using the equivalent circuit of the SCIG and using the concepts of stable and unstable electrical-mechanical equilibrium. The method has been evaluated by comparing the results obtained by the analytic method with the dynamic simulation. The results show that the proposed hybrid controller is effective at smoothing the output power and complying with FRT requirements for SCIG in the power system.
机译:风力发电厂中的常见问题涉及定速风力涡轮机。实际上,由于配备了鼠笼式感应发电机(SCIG),它们往往会从电网中消耗掉相当数量的无功功率,从而可能导致电压降和可能的电压不稳定。为了提高SCIG的电能质量和瞬态稳定性,本文研究了一种基于比例积分(PI)控制器和模糊逻辑控制器(FLC)的俯仰角控制新控制策略,同时考虑了正常和故障穿越(FRT)方案。在文献中,通常将机械转矩输出假定为特定风速的常数。这可能是不准确的,因为风力涡轮机的典型机械转矩速度还取决于功率系数或桨距角。在本文中,使用SCIG的等效电路并使用稳定和不稳定的机电平衡概念,提出了瞬态稳定性的解析模型。通过将分析方法获得的结果与动态仿真进行比较,对该方法进行了评估。结果表明,提出的混合控制器有效地平滑了输出功率,并符合电力系统中SCIG的FRT要求。

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