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Optimal fractional‐order controller design using direct synthesis method

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Yumuk, Erhan
Doktor Ogretim uyesi

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Institution of Engineering and Technology (IET)

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In this study, an optimal fractional‐order controller is proposed for a type of fractional‐order model utilising the direct synthesis method. In that respect, the fractional counterpart of the second‐order integer transfer function is selected as a closed‐loop reference transfer function. The stability region of the fractional‐order closed‐loop reference transfer function is given via a theorem and related lemmas. Considering that a unity feedback loop is used, the parameters of the fractional‐order closed‐loop reference transfer function are specified based on the integral square error performance index within the specified stability region using a genetic algorithm. The time‐domain characteristics of the optimal fractional‐order closed‐loop reference transfer function are compared with those of the optimal second‐order integer closed‐loop reference transfer function. The fractional‐ and integer‐order controllers that are designed based on optimal closed‐loop reference transfer functions are implemented on a real‐time system. The performance of the fractional‐order controller outperforms that of the integer counterpart on the integral square error criterion. Moreover, the simulation and practical results are consistent with each other.

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IET Control Theory & Applications

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1751-8644

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OPEN

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second-order integer transfer function, feedback, Fractional ordinary differential equations, Feedback control, stability, Synthesis problems, genetic algorithms, optimal control, three-term control, optimal fractional-order closed-loop reference transfer function, transfer functions, integral square error criterion, genetic algorithm, control system synthesis, direct synthesis method, optimal second-order integer closed-loop reference transfer function, optimal fractional-order controller design, Control/observation systems governed by ordinary differential equations, performance index, closed loop systems

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