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Multi‐objective robust fuzzy fractional order proportional–integral–derivative controller design for nonlinear hydraulic turbine governing system using evolutionary computation techniques

机译:使用进化计算技术的非目标液压涡轮机控制系统的多目标鲁棒模糊分数阶比例 - 积分衍生控制器设计

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The present paper proposes a novel multi-objective robust fuzzy fractional order proportional-integral-derivative (PID) controller design for nonlinear hydraulic turbine governing system (HTGS) by using evolutionary computation techniques. The fuzzy fractional order PID (FOPID) controller takes closed loop error and its fractional derivative as inputs and performs fuzzy logic operations. Then, it produces the output through the fractional order integrator. The predominant advantages of the proposed controller are its capability to handle complex nonlinear processes like HTGS in heuristic manner, due to fuzzy incorporation and extending an additional flexibility in tuning the order of fractional derivative/integral terms to enhance the closed loop performance. The present work formulates the optimal tuning problem of fuzzy FOPID controller for HTGS as a multi-objective one instead of a traditional single-objective one towards satisfying the conflicting criteria such as less settling time and minimum damped oscillations simultaneously to ensure the improved dynamic performance of HTGS. The multi-objective evolutionary computation techniques such as non-dominated sorting genetic algorithm-II (NSGA-II) and modified NSGA-II have been utilized to find the optimal input/output scaling factors of the proposed controller along with the order of fractional derivative/integral terms for HTGS system under no load and load turbulence conditions. The performance of the proposed fuzzy FOPID controller is compared with PID and FOPID controllers. The simulations have been conducted to test the tracking capability and robust performance of HTGS during dynamic set point changes for a wide range of operating conditions and model parameter variations, respectively. The proposed robust fuzzy FOPID controller has ensured better fitness value and better time domain specifications than the PID and FOPID controllers, during optimization towards satisfying the conflicting objectives such as less settling time and minimum damped oscillations simultaneously, due to its special inheritance of fuzzy and FOPID properties.
机译:本文通过使用进化计算技术提出了一种用于非线性液压涡轮机控制系统(HTG)的新型多目标鲁棒模糊分数阶比例 - 积分(PID)控制器设计。模糊分数阶PID(FOPID)控制器采用闭环误差及其分数导数为输入并执行模糊逻辑操作。然后,它通过分数顺序积分器产生输出。所提出的控制器的主要优点是其能够以启发式方式处理HTG的复杂非线性工艺,由于模糊掺入,并且在调整分数衍生/整体术语的顺序时延伸了额外的灵活性,以提高闭环性能。本工作制定了用于HTG的模糊FOPID控制器的最佳调整问题,作为多目标之一,而不是同时满足诸如较少的稳定时间和最小阻尼振荡的传统单目标载体,以确保改善的动态性能htgs。已经利用了多目标进化计算技术,例如非主导的分类遗传算法-II(NSGA-II)和修改的NSGA-II,以找到所提出的控制器的最佳输入/输出缩放因子以及分数衍生物的顺序/ HTGS系统的整体术语在无负载和载荷湍流条件下。将建议的模糊FOPID控制器的性能与PID和FOPID控制器进行比较。已经进行了仿真以测试动态设定点变化期间HTG的跟踪能力和鲁棒性能,分别为各种操作条件和模型参数变化。由于其特殊的模糊和Fopid,所提出的稳健性模糊Fopid控制器确保了比PID和FoPID控制器更好的适应值和更好的时域规范。特性。

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