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Model Predictive Based Load Frequency Control of Interconnected Power Systems

机译:基于模型预测的互联电力系统负载频率控制

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Background: To achieve the goal of automatic generation control of better system frequency regulation and to control the tie-line active power deviations, this paper presents a genetic algorithm optimized model predictive control (GA-MPC) scheme for load frequency regulation of two area interconnected power systems. Methods: Three different power systems: thermal-thermal system, thermal-nuclear system and thermalgas system, interconnected by tie-lines, have been considered to assess the performance of the proposed control scheme (GA-MPC). Inorder to evaluate the effectiveness of the proposed controller, a comparitive analysis is performed between the controller scheme, auto-tuned PID controller and autotuned MPC, in terms of performance indices namely: overshoot/undershoot and settling time of the transient response of the test systems. Sensitivity analysis has also been performed to test the efficacy and robustness of GA-MPC, MPC and PID controllers, when subjected to variations in loading conditions, tie-line synchronizing coefficient and turbine time constant. Also, dynamic response of the thermal-thermal system with GA based MPC controller is studied and analysed in the presence of nonlinear constraints namely: generation rate constraint (GRC) and governor deadband. Results: The simulation results establish the superiority of GA based MPC over auto-tuned MPC and auto-tuned PID controllers, in maintaining the output power generation and minimization of the area control error. The sensitivity analysis shows that the proposed scheme is robust and insensitive to the variations in load disturbances and system parameters. Also, the considered control scheme is able to effectively handle the system non-linearities. Conclusion: The presented method is quite effective in controlling the system frequency and tie-line power flow in the presence of system non-linearities and sudden disturbances.
机译:背景:为实现更好的系统频率调节的自动生成控制的目标,并控制系列有源电力偏差,本文介绍了一个遗传算法优化模型预测控制(GA-MPC)方案,用于两个区域互联的两个区域的负载频率调节电力系统。方法:三种不同的电力系统:通过系列互联的热系统,热核系统和热胶质系统,已被认为是评估所提出的控制方案(GA-MPC)的性能。为了评估所提出的控制器的有效性,在性能指标方面,在控制器方案,自动调谐的PID控制器和自动调节MPC之间进行比较分析即:测试系统的瞬态响应的过冲/下冲和稳定时间。还已经进行了灵敏度分析,以测试GA-MPC,MPC和PID控制器的功效和稳健性,当受加载条件的变化,系数同步系数和涡轮时间常数进行旋转时。此外,在非线性约束存在下,研究和分析了基于GA基MPC控制器的热敏系统的动态响应即:生成率约束(GRC)和调速器死区。结果:仿真结果在维护输出发电和区域控制误差的最小化方面,建立了基于MPC和自动调谐的PID控制器的基于MPC的优越性。灵敏度分析表明,所提出的方案对负载扰动和系统参数的变化是鲁棒和不敏感的。而且,所考虑的控制方案能够有效地处理系统非线性。结论:本方法在系统非线性和突然干扰的存在下控制系统频率和扎线功率时非常有效。

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