EN
FUZZY PID CONTROLLER FOR PROPELLER PENDULUM
Öz
In this paper, a fuzzy PID controller is proposed for angular position control of a nonlinear propeller
pendulum system. While classical control methods work well on linear systems, nonlinear control approaches should be
designed for nonlinear ones. On the one hand, there are three constant gains related with linear proportional, integral
and derivative terms in classical PID controller. On the other hand, these gains are varied with time by the proposed
controller using fuzzy logic inference. In order to demonstrate the position control enhancement for the nonlinear
system, the proposed controller is compared with classical PID controller using simulation results with and without
external disturbance. The simulation results show that the proposed Fuzzy PID controller is more successful in
reference tracking than classical PID controller.
Anahtar Kelimeler
Kaynakça
- [1] A. Farmanbordar, N. Zaeri and S. Rahimi, "Stabilizing a Driven Pendulum Using DLQR Control", in 2011 Fifth Asia Modelling Symposium, 2011, pp. 123-126.
- [2] A. Mohammadbagheri and M. Yaghoobi, "A New Approach to Control A Driven Pendulum with PID Method", in 2011 UKSim 13th International Conference on Modelling and Simulation, 2011, pp. 207-211.
- [3] H. Kizmaz, S. Aksoy and A. Muhurcu, “Sliding mode control of suspended pendulum”, Modern Electric Power Systems (MEPS), in 2010 Proceedings of the International Symposium, 2010, pp. 1-6.
- [4] G. Habib, A. Miklos, E. T. Enikov, G. Stepan and G. Rega, “Nonlinear model-based parameter estimation and stability analysis of an aero-pendulum subject to digital delayed control”, International Journal of Dynamics and Control, 2015, DOI 10.1007/s40435-015-0203-0.
- [5] S. Srinivasulu Raju, T.S. Darshan and B. Nagendra, “Design of Quadratic Dynamic Matrix Control for Driven Pendulum System”, International Journal of Electronics and Communication Engineering, Vol. 5, No. 3, pp. 363-370, 2012.
- [6] M. Yoon, “Stabilization of a Propeller - Driven Pendulum”, International Journal of Engineering Research & Technology (IJERT), Vol. 5, Iss. 1, pp. 230-233, 2016.
- [7] R. Ghasemi, M. R. Rahimi Khoygani, “Designing Intelligent Adaptive Controller for Nonlinear Pendulum Dynamical System”, International Journal of Computer, Electrical, Automation, Control and Information Engineering, Vol. 8, No. 11, pp. 2021-2025, 2014.
- [8] T. Huba, T. Malatinec, M. Huba, “Propeller-Pendulum for Nonlinear UAVs Control”, iJOE, Vol. 9, Issue 1, pp. 42-46, 2013.
Ayrıntılar
Birincil Dil
İngilizce
Konular
Mühendislik
Bölüm
Araştırma Makalesi
Yazarlar
Yayımlanma Tarihi
27 Mart 2017
Gönderilme Tarihi
15 Ağustos 2016
Kabul Tarihi
19 Aralık 2016
Yayımlandığı Sayı
Yıl 2017 Cilt: 17 Sayı: 1
APA
Taskın, Y. (2017). FUZZY PID CONTROLLER FOR PROPELLER PENDULUM. IU-Journal of Electrical & Electronics Engineering, 17(1), 3201-3207. https://izlik.org/JA94MX27HF
AMA
1.Taskın Y. FUZZY PID CONTROLLER FOR PROPELLER PENDULUM. IU-Journal of Electrical & Electronics Engineering. 2017;17(1):3201-3207. https://izlik.org/JA94MX27HF
Chicago
Taskın, Yener. 2017. “FUZZY PID CONTROLLER FOR PROPELLER PENDULUM”. IU-Journal of Electrical & Electronics Engineering 17 (1): 3201-7. https://izlik.org/JA94MX27HF.
EndNote
Taskın Y (01 Mart 2017) FUZZY PID CONTROLLER FOR PROPELLER PENDULUM. IU-Journal of Electrical & Electronics Engineering 17 1 3201–3207.
IEEE
[1]Y. Taskın, “FUZZY PID CONTROLLER FOR PROPELLER PENDULUM”, IU-Journal of Electrical & Electronics Engineering, c. 17, sy 1, ss. 3201–3207, Mar. 2017, [çevrimiçi]. Erişim adresi: https://izlik.org/JA94MX27HF
ISNAD
Taskın, Yener. “FUZZY PID CONTROLLER FOR PROPELLER PENDULUM”. IU-Journal of Electrical & Electronics Engineering 17/1 (01 Mart 2017): 3201-3207. https://izlik.org/JA94MX27HF.
JAMA
1.Taskın Y. FUZZY PID CONTROLLER FOR PROPELLER PENDULUM. IU-Journal of Electrical & Electronics Engineering. 2017;17:3201–3207.
MLA
Taskın, Yener. “FUZZY PID CONTROLLER FOR PROPELLER PENDULUM”. IU-Journal of Electrical & Electronics Engineering, c. 17, sy 1, Mart 2017, ss. 3201-7, https://izlik.org/JA94MX27HF.
Vancouver
1.Yener Taskın. FUZZY PID CONTROLLER FOR PROPELLER PENDULUM. IU-Journal of Electrical & Electronics Engineering [Internet]. 01 Mart 2017;17(1):3201-7. Erişim adresi: https://izlik.org/JA94MX27HF