Artificial Neural Network-Based Experimental Investigations for Sliding Mode Control of an Induction Motor in Power Steering Applications

Sliding mode control (SMC) of induction motor is a new concept in the current scenario, as it seeks to improve torque control accuracy and power steering efficiency through the use of pulse width modulation schemes. Furthermore, artificial neural network-based sliding mode control is applied to a sq...

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Published inInternational journal of intelligent systems Vol. 2023; no. 1
Main Authors Parimalasundar, E., Senthilkumar, R., Kumar, B. Hemanth, Janardhan, K., Singh, Arvind R., Bajaj, Mohit, Bereznychenko, Viktoriia
Format Journal Article
LanguageEnglish
Published New York Hindawi 2023
John Wiley & Sons, Inc
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Abstract Sliding mode control (SMC) of induction motor is a new concept in the current scenario, as it seeks to improve torque control accuracy and power steering efficiency through the use of pulse width modulation schemes. Furthermore, artificial neural network-based sliding mode control is applied to a squirrel cage induction motor, which is used in the steering control of automobiles. The artificial neural network (ANN)-based SMC is more popular due to its robustness and good stability in external parameter variation. Additionally, an SMC and an ANN-based SMC are employed to compute the torque and flux, improving performance for power steering applications. The performance of the designed model is validated through MATLAB/Simulink and experimental models with different controllers under various operating conditions. The controller has been embedded into a TMS320F28335 controller, and performances have been evaluated. The performance analyses of induction motor using different controllers are performed. The transient performances of induction motor such as delay time, rise time, settling time, and steady-state error are investigated. The proposed work is analysed by using a mathematical model and implemented in a test-bench model for validation.
AbstractList Sliding mode control (SMC) of induction motor is a new concept in the current scenario, as it seeks to improve torque control accuracy and power steering efficiency through the use of pulse width modulation schemes. Furthermore, artificial neural network-based sliding mode control is applied to a squirrel cage induction motor, which is used in the steering control of automobiles. The artificial neural network (ANN)-based SMC is more popular due to its robustness and good stability in external parameter variation. Additionally, an SMC and an ANN-based SMC are employed to compute the torque and flux, improving performance for power steering applications. The performance of the designed model is validated through MATLAB/Simulink and experimental models with different controllers under various operating conditions. The controller has been embedded into a TMS320F28335 controller, and performances have been evaluated. The performance analyses of induction motor using different controllers are performed. The transient performances of induction motor such as delay time, rise time, settling time, and steady-state error are investigated. The proposed work is analysed by using a mathematical model and implemented in a test-bench model for validation.
Author Kumar, B. Hemanth
Singh, Arvind R.
Senthilkumar, R.
Janardhan, K.
Bereznychenko, Viktoriia
Parimalasundar, E.
Bajaj, Mohit
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  organization: Department of Theoretical Electrical Engineering and Diagnostics of Electrical EquipmentInstitute of ElectrodynamicsNational Academy of Science of UkrainePeremogy56Kyiv-57 03680Ukrainenas.gov.ua
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Copyright Copyright © 2023 E. Parimalasundar et al.
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– ident: e_1_2_10_9_2
  doi: 10.1109/tcst.2021.3092186
– ident: e_1_2_10_38_2
  doi: 10.1109/TCSII.2023.3234609
SSID ssj0011745
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Snippet Sliding mode control (SMC) of induction motor is a new concept in the current scenario, as it seeks to improve torque control accuracy and power steering...
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hindawi
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SubjectTerms Artificial neural networks
Control theory
Controllers
Delay time
Design
Error analysis
Induction motors
Intelligent systems
Mathematical models
Neural networks
Performance evaluation
Power steering
Pulse duration modulation
Regulation
Robustness (mathematics)
Sliding mode control
Squirrel cage motors
Torque
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Title Artificial Neural Network-Based Experimental Investigations for Sliding Mode Control of an Induction Motor in Power Steering Applications
URI https://dx.doi.org/10.1155/2023/9381915
https://www.proquest.com/docview/2879845642
Volume 2023
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