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dc.contributor.advisorBrandštetter, Pavel
dc.contributor.authorTran Dinh, Cuong
dc.date.accessioned2021-02-05T10:33:30Z
dc.date.available2021-02-05T10:33:30Z
dc.date.issued2020
dc.identifier.otherOSD002
dc.identifier.urihttp://hdl.handle.net/10084/142777
dc.description.abstractDue to the advantages of economics, ruggedness, self-starting, and stable in operation, the three-phase induction motor (IM) is the most popular electrical machine in the industry. In the past, IMs were used in the uncontrollable-speed applications. With advanced technologies in high-performance power converters and modern control algorithms, IMs can work effectively in variable-speed drives. In practice, abnormal operation of IMs could occur due to the malfunctions of sensor errors. The loss of feedback signals can lead to incorrect actions of the controller. And if such sensor failures cannot be detected and solved quickly, it can lead to more serious problems and then causes damage to the whole IM drive system. Therefore, fault-tolerant control (FTC) methods have been researched and proposed as effective solutions against sensor failures to enhance the reliability of the IM system. In this thesis, the theory of techniques for fault-tolerant against current and speed sensor failures in the induction motor drive is described. The improvement of sensor-fault diagnosis methods is proposed. The estimated signals are used as the solution to reconfigure the control of the IM drive in the sensor-fault conditions. The simulations in MATLAB – Simulink environment are used to verify the performance of the proposed algorithms. Next, the DSP TMS320F28335 has been applied to the experiment corresponding to the simulations. Finally, the experiment results of FTC methods are presented to demonstrate the feasibility and effectiveness of the proposed methods against sensor faults.en
dc.description.abstractDue to the advantages of economics, ruggedness, self-starting, and stable in operation, the three-phase induction motor (IM) is the most popular electrical machine in the industry. In the past, IMs were used in the uncontrollable-speed applications. With advanced technologies in high-performance power converters and modern control algorithms, IMs can work effectively in variable-speed drives. In practice, abnormal operation of IMs could occur due to the malfunctions of sensor errors. The loss of feedback signals can lead to incorrect actions of the controller. And if such sensor failures cannot be detected and solved quickly, it can lead to more serious problems and then causes damage to the whole IM drive system. Therefore, fault-tolerant control (FTC) methods have been researched and proposed as effective solutions against sensor failures to enhance the reliability of the IM system. In this thesis, the theory of techniques for fault-tolerant against current and speed sensor failures in the induction motor drive is described. The improvement of sensor-fault diagnosis methods is proposed. The estimated signals are used as the solution to reconfigure the control of the IM drive in the sensor-fault conditions. The simulations in MATLAB – Simulink environment are used to verify the performance of the proposed algorithms. Next, the DSP TMS320F28335 has been applied to the experiment corresponding to the simulations. Finally, the experiment results of FTC methods are presented to demonstrate the feasibility and effectiveness of the proposed methods against sensor faults.cs
dc.format97 stran : ilustrace
dc.format.extent14488769 bytes
dc.format.mimetypeapplication/pdf
dc.language.isoen
dc.publisherVysoká škola báňská – Technická univerzita Ostravacs
dc.subjectInduction motoren
dc.subjectelectric driveen
dc.subjectvector controlen
dc.subjectsensorless controlen
dc.subjectfault tolerant control.en
dc.subjectInduction motorcs
dc.subjectelectric drivecs
dc.subjectvector controlcs
dc.subjectsensorless controlcs
dc.subjectfault tolerant control.cs
dc.titleSensor Fault Tolerant Control of Induction Motor Driveen
dc.title.alternativeSensor Fault Tolerant Control of Induction Motor Drivecs
dc.typeDisertační prácecs
dc.identifier.signature202200018
dc.identifier.locationÚK/Sklad diplomových prací
dc.contributor.refereeSlivka, David
dc.contributor.refereeValouch, Viktor
dc.contributor.refereeKuchař, Martin
dc.date.accepted2020-12-08
dc.thesis.degree-namePh.D.
dc.thesis.degree-levelDoktorský studijní programcs
dc.thesis.degree-grantorVysoká škola báňská – Technická univerzita Ostrava. Fakulta elektrotechniky a informatikycs
dc.description.department430 - Katedra elektronikycs
dc.thesis.degree-programElektrotechnikacs
dc.thesis.degree-branchElektrické stroje, přístroje a pohonycs
dc.description.resultvyhovělcs
dc.identifier.senderS2724
dc.identifier.thesisTRA0062_FEI_P2649_2642V004_2020
dc.rights.accessopenAccess


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