Dynamic Behavior and Stability Analysis of Automatic Voltage Regulator with Parameter Uncertainty

Author:

Gopi Pasala1,Srinivasa Varma Pinni2,Sai Kalyan Ch Naga3,Ravikumar C. V.4,Srinivasulu Asadi5ORCID,Bohara Bhimsingh6,Rajesh A.7,Ab Wahab Mohd Nadhir8,Sathish K.4

Affiliation:

1. Department of Electrical and Electronics Engineering, Annamacharya Institute of Technology and Sciences (Autonomous), Rajampet, Andhra Pradesh, India

2. Department of Electrical and Electronics Engineering, Koneru Lakshmaiah Education Foundation, Guntur, Andhra Pradesh, India

3. Department of Electrical and Electronics Engineering, Vasireddy Venkatadri Institute of Technology, Guntur, Andhra Pradesh, India

4. School of Electronics Engineering, Vellore Institute of Technology, Vellore, India

5. Data Science Research Lab, BlueCrest University, Monrovia, Liberia

6. BlueCrest University, Monrovia 1000, Liberia

7. School of Electrical and Electronics Engineering, SASTRA University, Thanjavur, India

8. School of Computer Sciences, Universiti Sains Malaysia, George Town, Malaysia

Abstract

This research article describes a novel optimization technique called simulink design optimization (SDO) to compute the optimal PID coefficients for an automatic voltage regulator (AVR). The time-domain performance of the proposed controller was analyzed using MATLAB/Simulation, and its performance was compared with that of water cycle algorithm, genetic algorithm, and local unimodal sampling algorithm-based PID controllers. The robustness of the proposed controller was verified by applying the disturbances to the generator field voltage and the amplifier parameter uncertainty. The studies presented in literature were discussed the AVR loop stability using the Bode plot which will not give the minimum stability margins. This study proposes a novel stability analysis called disk-based stability analysis to authenticate the stability of the AVR loop which is obtained by the classical analysis. This stability was compared with the proposed stability analysis. The MATLAB results reveal that the SDO-PID controller regulates the terminal voltage of the generator precisely, is more robust to parameter uncertainty, and is more stable than the other controllers. The maximum allowable parameter uncertainty of the amplifier model was identified as 102% of its nominal parameters. The stability margins are recognized as DGM = 10.40 dB and DPM = 56.50° for the AVR stability.

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Energy Engineering and Power Technology,Modeling and Simulation

Reference26 articles.

1. Artificial ecosystem-based optimization for optimal tuning of robust PID controllers in AVR systems with limited value of excitation voltage;M. Calasan;International Journal of Electrical Engineering Education,2020

2. Tuning and Assessment of Proportional–Integral–Derivative Controller for an Automatic Voltage Regulator System Employing Local Unimodal Sampling Algorithm

3. Evaluation of automatic voltage regulator's PID controller coefficients using Python;P. Gopi

4. Combined Frequency and Voltage Stabilization of multi-area multisource system by DE-AEFA optimized PID controller with coordinated performance of IPFC and RFBs;C. Kalyan;International Journal of Ambient Energy,2020

5. The future of PID control

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