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首页> 外文期刊>International Journal of Control, Automation, and Systems >Robust Higher Order Observer Based Non-linear Super Twisting Load Frequency Control for Multi Area Power Systems via Sliding Mode
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Robust Higher Order Observer Based Non-linear Super Twisting Load Frequency Control for Multi Area Power Systems via Sliding Mode

机译:基于鲁棒的高阶观测器基于滑动模式的多区域电力系统的非线性超扭转载荷频率控制

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The article focuses on the design of higher order sliding mode observer (HOSMO) based super twisting sliding mode control (ST-SMC) for load frequency problems in an interconnected multi area power systems. A sudden load disturbance in any area can cause deviations in frequency and tie line power from their desired values. The proposed design functions for the improved overall performance of the system. High frequency oscillations (chattering) which is the main operational problem with SMC is investigated through ST-SMC. Firstly, with inherent advantages of robustness, insensitivity to uncertainties and disturbances, the HOSMO estimates the system states from the output and control signal. Secondly, the ST-SMC acts only on the first time derivative of sliding surface to ensure finite time convergence of frequency and tie line power deviations. The supremacy of the proposed design compared to modern state of the art lies in improved transient and steady state behavior, robustness and chattering free control without any loss in control accuracy. Furthermore, performance indices like integral square error (ISE), integral absolute error (IAE) and integral time absolute error (ITAE) for the said controller are found to be lesser compared to that of linear and nonlinear SMC. The said controller also results in acceptable frequency deviation when validated under random step load disturbances, parameter uncertainties, with an integration of renewable energy resource and nonlinearities in power systems like generation rate constraints (GRC) and governor dead band (GDB).
机译:该文章侧重于基于高阶滑模观测器(HOSMO)的超扭转滑动模式控制(ST-SMC)的设计,用于互连的多区域电力系统中的负载频率问题。任何区域的突然负载扰动都会导致频率和绑定线功率的偏差从它们所需​​的值。所提出的设计功能,用于改进系统的整体性能。通过ST-SMC研究了作为SMC主要操作问题的高频振荡(抖动)。首先,具有坚固性的固有优势,对不确定性和扰动的不敏感性,Hosmo估计系统状态从输出和控制信号。其次,ST-SMC仅在滑动表面的第一次导数上作用,以确保频率和系绳电力偏差的有限时间收敛。与现代技术相比,所提出的设计的至高无上在于改善的瞬态和稳态行为,鲁棒性和喋喋不休的自由控制,而无需控制精度。此外,与线性和非线性SMC相比,发现与所述控制器的整体方误差(ISE),积分绝对误差(IAE)和积分时间绝对误差(ITAE)相比,比较的性能指标。当在随机步骤负载干扰下验证时,所述控制器还可以在参数不确定性下验证时,参数不确定因素的可接受的频率偏差,其具有生成率约束(GRC)和总监死区(GDB)等功率系统中的可再生能源资源和非线性。

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