| Login
dc.contributor.author | Shuvo, Taufiqul Islam | |
dc.contributor.author | Tonmoy, Hannan Mahmood | |
dc.contributor.author | Showmik, Sadman Sadat | |
dc.date.accessioned | 2022-05-04T15:35:45Z | |
dc.date.available | 2022-05-04T15:35:45Z | |
dc.date.issued | 2021-03-30 | |
dc.identifier.citation | [1] O.I. Elgerd, Electric Energy Systems Theory – An Introduction, second ed., Tata McGraw Hill, New Delhi, 2000. [2] P. Kundur, Power SystemStability and Control, eighth reprint, Tata McGraw Hill, New Delhi, 2009. [3] H. Bevrani, Robust Power System Frequency Control, Springer, New York, 2009. [4] I.P. Kumar, D.P. Kothari, Recent philosophies of automatic generation control strategies in power systems, IEEE Trans. Power Syst. 20 (2005) 346– 357. [5] H. Shayaghi, H.A. Shayanfar, A. Jalili, Load frequency control strategies: a state of the art survey for the researcher, Energy Convers. Manag. 50 (2009) 344–354. [6] K.P.S. Parmar, S. Majhi, D.P. Kothari, Load frequency control of a realistic power system with multi-source power generation, Int. J. Electr. Power Energy Syst. 42 (2012) 426–433. [7] P. Bhatt, S.P. Ghoshal, R. Roy, Load frequency stabilization by coordinated control of thyristor controlled phase shifters and superconducting magnetic energy storage for three types of interconnected two-area power systems, Int. J. Electr. Power Energy Syst. 32 (2010) 1111–1124. [8] U.K. Rout, R.K. Sahu, S. Panda, Design and analysis of differential evolution algorithm based automatic generation control for interconnected power system, Ain Shams Eng. J. 4 (3) (2013) 409–421. [9] S. Panda, N.K. Yegireddy, Automatic generation control of multi-area power 32 system using multi-objective non-dominated sorting genetic algorithm-II, Int. J. Electr. Power Energy Syst. 53 (2013) 54–64. [10] L.C. Saikia, J. Nanda, S. Mishra, Performance comparison of several classical controllers in AGC for multi-area interconnected thermal system, Int. J. Electr. Power Energy Syst. 33 (2011) 394–401. [11] S.A. Taher, M.H. Fini, S.F. Aliabadi, Fractional order PID controller design for LFC in electric power systems using imperialist competitive algorithm, Ain Shams Eng. J. 5 (2014) 121–135. [12] S. Debbarma, L.C. Saikia, N. Sinha, Robust two-degree-of-freedom controller for automatic generation control of multi-area system, Int. J. Electr. Power Energy Syst. 63 (2014) 878–886. [13] F. Daneshfar, H. Bervani, Multi objective design of load frequency control using genetic algorithms, Int. J. Electr. Power Energy Syst. 42 (2012) 257–263. [14] H. Gozde, M.C. Taplamacioglu, I. Kocaarslan, Comparative performance analysis of Artificial Bee Colony algorithm in automatic generation control for interconnected reheat thermal power system, Int. J. Electr. Power Energy Syst. 42 (2012) 167–178. [15] E.S. Ali, S.M. Abd Elazim, BFOA based design PID controller for two-area Load Frequency Control with nonlinearities, Int. J. Electr. Power Energy Syst. 51 (2013) 224–231. [16] P. Dash, L.C. Saikia, N. Sinha, Comparison of performances of several Cuckoo search algorithm based 2DOF controllers in AGC of multi-area thermal system, Int. J. Electr. Power Energy Syst. 55 (2014) 429–436. [17] B. Mohanty, S. Panda, P.K. Hota, Differential evolution algorithm based automatic generation control for interconnected power systems with non-linearity, Alexandria Eng. J. 53 (2014) 537–552. [18] R.K. Sahu, S. Panda, S. Padhan, A hybrid firefly algorithm and pattern search technique for automatic generation control of multi-area power systems, Int. J. Electr. Power Energy Syst. 64 (2015) 9–23. 33 [19] D. Das, S.K. Aditya, D.P. Kothari, Dynamics of diesel and wind turbine generators on an isolated power system, Int. J. Electr. Power Energy Syst. 21 (1999) 183–189. [20] R.V. Rao, V.J. Savsani, D.P. Vakharia, Teaching–learning-based optimization: an optimization method for continuous non-linear large scale problems, Inf. Sci. (Ny) 183 (1) (2012) 1–15. [21] S. Padhan, R.K. Sahu, S. Panda, Application of firefly algorithm for load frequency control of multi-area interconnected power system, Electr. Power Compo. Syst. 42 (13) (2014) 1419–1430. [22] R.K. Sahu, S. Panda, S. Padhan, Optimal gravitational search algorithm for automatic generation control of interconnected power systems, Ain Shams Eng. J. 5 (2014) 721–733. [23] H. Shabani, B. Vahidi, M. Ebrahimpour, A robust PID controller based on imperialist competitive algorithm for load-frequency control of power systems, ISA Trans. 52 (1) (2013) 88–95. [24] R.V. Rao, V.D. Kalyankar, Parameter optimization of modern machining processes using teaching–learning based optimization algorithm, Eng. Appl. Artif. Intell. 26 (1) (2013) 524–531. [25] B. Mohanty, S. Panda, P.K. Hota, Controller parameters tuning of differential evolution algorithm and its application to load frequency control of multisource power system, Int. J. Electr. Power Energy Syst. 54 (2014) 77–85. [26] R.K. Sahu, S. Panda, U.K. Rout, DE optimized parallel 2-DOF PID controller for load frequency control of power systemwith governor dead-band nonlinearity, Int. J. Electr. Power Energy Syst. 49 (2013) 19–33. [27] S.R. Khuntia, S. Panda, Simulation study for automatic generation control of a multi-area power. | en_US |
dc.identifier.uri | http://hdl.handle.net/123456789/1474 | |
dc.description | Supervised by Dr. Ashik Ahmed Professor Electrical and Electronic Engineering (EEE) Islamic University of Technology (IUT) Boardbazar, Gazipur-1704. | en_US |
dc.description.abstract | Our proposition point is identified with Stability investigation of regulator for Automatic Generation Control (AGC) of multi territory power frameworks with different energy assets. This postulation book contains an inside and out investigation of the plan and examination of Proportional-Integral Derivative (PID) regulator for Automatic Generation Control (AGC) of multi-territory power frameworks with different fuel sources. From the start, a two-zone energy framework with suitable Generation Rate Constraint (GRC) is thought of. The plan issue is detailed as an advancement issue and to advance the boundaries of the PID regulator. The prevalence of the proposed PID regulator has been shown for a similar interconnected force framework. Additionally, the proposed approach has been stretched out to two-zone power framework with assorted wellsprings of age like warm, hydro, wind and diesel units. The framework model incorporates evaporator elements, GRC and Governor Dead Band (GDB) .It is seen from reproduction results that the presentation of the proposed approach gives better powerful reactions by contrasting the outcomes and as of late distributed in the writing. Further, the examination is reached out to a three inconsistent territory energy framework with various regulators in every zone and the outcomes are contrasted and distributed FA improved PID regulator for a similar framework under investigation | en_US |
dc.language.iso | en | en_US |
dc.publisher | Department of Electrical and Electronic Engineering, Islamic University of Technology (IUT) The Organization of Islamic Cooperation (OIC) Board Bazar, Gazipur-1704, Bangladesh | en_US |
dc.title | Stability Analysis Using PID Controller for Automatic Generation Control (AGC) of Multi Area Power Systems | en_US |
dc.type | Thesis | en_US |