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Design and implementation of a novel FO-hPID-FPID controller for AGC of multiarea interconnected nonlinear thermal power system

机译:用于多体互连非线性热电力系统AGC新型FO-HPID-FPID控制器的设计与实现

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Automatic generation control (AGC) plays a crucial role in modern power system to control the frequency with change in power demand. A novel fractional order (FO) hybrid PID-fuzzy-PID (FO-hPID-FPID) controller is proposed in this paper as the secondary controller for AGC of a three unequal area interconnected nonlinear reheat thermal power system considering generation rate constraint. This paper also deals with the implementation of FO fuzzy PID (FOFPID) and FO PID (FOPID) controllers in addition to the proposed controller along with their counterpart integer order controllers to establish the dominance of FO controllers over integer order controllers. Various parameters of the controllers are optimized by hybridizing two global optimization techniques: particle swarm optimization and modified sine cosine algorithm (MSCA) and the optimization techniques so obtained is called as hybrid PSO-MSCA (hPSO-MSCA) technique. A step load perturbation of 0.01 p.u. is injected in area-1, and the system response is investigated independently with different controllers. It is revealed that the proposed FO-hPID-FPID delivers superior performance than the other controllers. Sensitivity analysis for parametric variations is carried out, and random load test is performed to validate the robustness of the proposed controller. Further, it is observed that the controllers deliver result in an ascending order of control performance as PID, FOPID, FPID, FOFPID, hPID-FPID and FO-hPID-FPID controllers with FO-hPID-FPID controller delivering the best result and the FO controllers deliver better control performance than their integer order counterparts.
机译:自动生成控制(AGC)在现代电力系统中起着至关重要的作用,以控制频率随机需求变化。本文提出了一种新颖的分数级(FO)混合PID-FIZMIZ-PID(FO-HPID-FPID)控制器作为考虑到产生速率约束的三个不等区域互连的非线性再加热热电系统AGC的二级控制器。本文还涉及除了所提出的控制器外的FO模糊PID(FOFPID)和FO PID(FOFPID)和FO PID(FOPID)控制器以及其对手整数控制器,以在整数控制器上建立FO控制器的主导地位。通过杂交两个全局优化技术优化控制器的各种参数:粒子群优化和修改的正弦余弦算法(MSCA)和如此获得的优化技术称为混合PSO-MSCA(HPSO-MSCA)技术。阶梯扰动0.01 p.u.注射在区域-1中,并用不同的控制器独立研究系统响应。据揭示,所提出的FO-HPID-FPID比其他控制器提供卓越的性能。执行参数变型的灵敏度分析,执行随机负载测试以验证所提出的控制器的鲁棒性。此外,观察到控制器随着PID,FOPID,FPID,FOFPID,HPID-FPID和FO-HPID-FEPID控制器提供了升序的升序,提供了具有FO-HPID-FOPID控制器的PID,FOPID和FO-HPID-FEPID控制器。控制器提供比整数顺序对应物更好的控制性能。

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