LAPSE:2023.11092v1
Published Article

LAPSE:2023.11092v1
Design of a Hybrid Fault-Tolerant Control System for Air−Fuel Ratio Control of Internal Combustion Engines Using Genetic Algorithm and Higher-Order Sliding Mode Control
February 27, 2023
Abstract
Fault-tolerant control systems (FTCS) are used in safety and critical applications to improve reliability and availability for sustained operation in fault situations. These systems may be used in process facilities to reduce significant production losses caused by irregular and unplanned equipment tripping. Internal combustion (IC) engines are widely used in the process sector, and efficient air−fuel ratio (AFR) regulation in the fuel system of these engines is critical for increasing engine efficiency, conserving fuel energy, and protecting the environment. In this paper, a hybrid fault-tolerant control system has been proposed, being a combination of two parts which are known as an active fault-tolerant control system and a passive fault-tolerant control system. The active part has been designed by using the genetic algorithm-based fault detection and isolation unit. This genetic algorithm provides estimated values to an engine control unit in case of a fault in any sensor. The passive system is designed by using the higher-order sliding mode control with an extra fuel actuator in the fuel supply line. The performance of the system was tested experimentally in MATLAB/Simulink environment. Based on the simulation results, the designed system can sustain the AFR despite sensor failures. A new method of managing the AFR of an IC engine has been demonstrated in this study, and it is highly capable, robust, reliable, and highly effective. A comparison with the existing works found in the literature also proves its superior performance. By inserting the fault in each sensor, it was clearly observed that proposed HFTCS was much better than the existing model as it was more fault-tolerant due to its ability to work in both online and offline modes. It also provided an exact value of 14.6 of AFR without any degradation.
Fault-tolerant control systems (FTCS) are used in safety and critical applications to improve reliability and availability for sustained operation in fault situations. These systems may be used in process facilities to reduce significant production losses caused by irregular and unplanned equipment tripping. Internal combustion (IC) engines are widely used in the process sector, and efficient air−fuel ratio (AFR) regulation in the fuel system of these engines is critical for increasing engine efficiency, conserving fuel energy, and protecting the environment. In this paper, a hybrid fault-tolerant control system has been proposed, being a combination of two parts which are known as an active fault-tolerant control system and a passive fault-tolerant control system. The active part has been designed by using the genetic algorithm-based fault detection and isolation unit. This genetic algorithm provides estimated values to an engine control unit in case of a fault in any sensor. The passive system is designed by using the higher-order sliding mode control with an extra fuel actuator in the fuel supply line. The performance of the system was tested experimentally in MATLAB/Simulink environment. Based on the simulation results, the designed system can sustain the AFR despite sensor failures. A new method of managing the AFR of an IC engine has been demonstrated in this study, and it is highly capable, robust, reliable, and highly effective. A comparison with the existing works found in the literature also proves its superior performance. By inserting the fault in each sensor, it was clearly observed that proposed HFTCS was much better than the existing model as it was more fault-tolerant due to its ability to work in both online and offline modes. It also provided an exact value of 14.6 of AFR without any degradation.
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Keywords
fault detection and isolation unit, Genetic Algorithm, higher-order sliding mode control, hybrid fault-tolerant control, robust control
Subject
Suggested Citation
Alsuwian T, Tayyeb M, Amin AA, Qadir MB, Almasabi S, Jalalah M. Design of a Hybrid Fault-Tolerant Control System for Air−Fuel Ratio Control of Internal Combustion Engines Using Genetic Algorithm and Higher-Order Sliding Mode Control. (2023). LAPSE:2023.11092v1
Author Affiliations
Alsuwian T: Department of Electrical Engineering, College of Engineering, Najran University, Najran 11001, Saudi Arabia [ORCID]
Tayyeb M: Department of Electrical Engineering, FAST National University of Computer and Emerging Sciences, Chiniot Faisalabad Campus, Chiniot 35400, Pakistan
Amin AA: Department of Electrical Engineering, FAST National University of Computer and Emerging Sciences, Chiniot Faisalabad Campus, Chiniot 35400, Pakistan [ORCID]
Qadir MB: School of Engineering & Technology, National Textile University, Faisalabad 37610, Pakistan
Almasabi S: Department of Electrical Engineering, College of Engineering, Najran University, Najran 11001, Saudi Arabia [ORCID]
Jalalah M: Department of Electrical Engineering, College of Engineering, Najran University, Najran 11001, Saudi Arabia; Promising Centre for Sensors and Electronic Devices (PCSED), Advanced Materials and Nano-Research Centre, Najran University, Najran 11001, Saudi A [ORCID]
Tayyeb M: Department of Electrical Engineering, FAST National University of Computer and Emerging Sciences, Chiniot Faisalabad Campus, Chiniot 35400, Pakistan
Amin AA: Department of Electrical Engineering, FAST National University of Computer and Emerging Sciences, Chiniot Faisalabad Campus, Chiniot 35400, Pakistan [ORCID]
Qadir MB: School of Engineering & Technology, National Textile University, Faisalabad 37610, Pakistan
Almasabi S: Department of Electrical Engineering, College of Engineering, Najran University, Najran 11001, Saudi Arabia [ORCID]
Jalalah M: Department of Electrical Engineering, College of Engineering, Najran University, Najran 11001, Saudi Arabia; Promising Centre for Sensors and Electronic Devices (PCSED), Advanced Materials and Nano-Research Centre, Najran University, Najran 11001, Saudi A [ORCID]
Journal Name
Energies
Volume
15
Issue
15
First Page
5666
Year
2022
Publication Date
2022-08-04
ISSN
1996-1073
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Original Submission
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PII: en15155666, Publication Type: Journal Article
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LAPSE:2023.11092v1
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https://doi.org/10.3390/en15155666
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Feb 27, 2023
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