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Robust power oscillation damper design for DFIG-based wind turbine based on specified structure mixed H_2/H_∞ control

机译:基于指定结构混合H_2 /H_∞控制的DFIG型风力发电机鲁棒功率振荡阻尼器设计

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摘要

As the integration of a doubly fed induction generator (DFIG)-based wind power generation into power systems tends to increase significantly, the contribution of DFIG wind turbine is highly expected. Since the active and reactive power outputs of DFIG can be independently modulated, the stabilizing effect of DFIG on the inter-area power system oscillation is a challenging issue. This paper proposes a new robust control design of power oscillation damper (POD) for a DFIG-based wind turbine using a specified structure mixed H_2/H_∞, control. The POD structure is a practical 2nd-order lead-lag compensator with single input. Normally, H_∞ control mainly enforces the closed-loop stability while noise attenuation or regulation against random disturbances is expressed in H_2 control. As a result, the mixed H_2/H_∞ control gives a powerful multi-objective control design so that both closed-loop stability and performance of designed controller can be guaranteed. Here, the linear matrix inequality is applied to formulate the optimization problem of POD based on a mixed H_2/H_∞ control. The POD parameters are optimized so that the performance and robustness of the POD against system disturbances and uncertainties are maximal. The firefly algorithm is automatically applied to solve the optimization problem. Simulation study in a two-area four-machine interconnected power system shows that the DFIG with robust POD is superior to conventional POD in terms of stabilizing effect as well as robustness against various power generating and loading conditions, unpredictable network structure, and random wind patterns.
机译:随着基于双馈感应发电机(DFIG)的风力发电在电力系统中的集成趋势显着增加,DFIG风力涡轮机的贡献令人期待。由于DFIG的有功和无功功率输出可以独立调制,因此DFIG对区域间电力系统振荡的稳定作用是一个具有挑战性的问题。本文提出了一种基于DFIG的风力发电机,采用指定结构H_2 /H_∞混合控制的新型鲁棒控制功率阻尼器(POD)。 POD结构是一种实用的单输入二阶超前滞后补偿器。通常,H_∞控制主要增强闭环稳定性,而H_2控制则表示噪声衰减或针对随机干扰的调节。结果,混合H_2 /H_∞控制提供了强大的多目标控制设计,因此可以确保闭环稳定性和所设计控制器的性能。在此,线性矩阵不等式被用来基于混合H_2 /H_∞控制来表达POD的优化问题。对POD参数进行了优化,以使POD抵抗系统干扰和不确定性的性能和鲁棒性最大化。萤火虫算法自动应用于解决优化问题。在两区域四机互联电力系统中的仿真研究表明,具有稳定POD的DFIG在稳定效果以及针对各种发电和负载条件,不可预测的网络结构以及随机风向的鲁棒性方面优于传统的POD。 。

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