首页> 外文期刊>Iranian Journal of Science and Technology, Transactions of Electrical Engineering >Event-Triggered Adaptive Integral Higher-Order Sliding Mode Control for Load Frequency Problems in Multi-area Power Systems
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Event-Triggered Adaptive Integral Higher-Order Sliding Mode Control for Load Frequency Problems in Multi-area Power Systems

机译:事件触发的多区域电力系统负载频率问题的自适应积分高阶滑模控制

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摘要

The study proposes a method to design continuous-time event-triggered adaptive integral higher-order sliding mode control for load frequency problems in multi-area power system under load disturbances and parameter uncertainties. Event-triggered strategy reduces the communication burden and lowers the control updating frequency while ensuring high-performance system stability. Event-triggered integral higher-order sliding mode control is used to attain need-based chattering-free control signal compared to event-triggered integral sliding mode control which assures its easy practical implementation. Adaptive estimation of switching gain is used with higher-order integral sliding mode control that eliminates the need of prior knowledge about the system uncertainties. Nonlinear uncertainties in power system like generation rate constraints (GRC) and governor deadband lead to load disturbance that results in deviation of frequency from its nominal value. Robustness of the controller is tested for plant considered with such nonlinearities. System performance without GRC is better; however, proposed controller still ensures finite time convergence of change in frequency under GRC and governor deadband. Proposed controller also guarantees finite time convergence of change in frequency under random varying load disturbances. We have also integrated renewable energy resources in the system and tried to handle relevant output power uncertainty in load frequency problem.
机译:该研究提出了一种针对负荷扰动和参数不确定性的多区域电力系统负荷频率问题设计连续事件触发的自适应积分高阶滑模控制方法。事件触发策略在确保高性能系统稳定性的同时,减轻了通信负担并降低了控制更新频率。与事件触发的积分滑模控制相比,事件触发的积分高阶滑模控制用于获得基于需求的无颤动控制信号,从而确保了其易于实际实现。开关增益的自适应估计与高阶积分滑模控制一起使用,从而无需有关系统不确定性的先验知识。电力系统中的非线性不确定性(例如发电率约束(GRC)和调速器死区)会导致负载干扰,从而导致频率偏离其标称值。对于考虑了这种非线性的工厂,测试了控制器的鲁棒性。没有GRC的系统性能更好;然而,提出的控制器仍然可以确保在GRC和调速器死区下频率变化的有限时间收敛。建议的控制器还可以保证在随机变化的负载扰动下,频率变化的有限时间收敛。我们还在系统中集成了可再生能源,并尝试处理负载频率问题中的相关输出功率不确定性。

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