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dc.contributor.advisorBrandštetter, Pavel
dc.contributor.authorDong, Chau Si Thien
dc.date.accessioned2018-06-26T05:50:37Z
dc.date.available2018-06-26T05:50:37Z
dc.date.issued2017
dc.identifier.otherOSD002
dc.identifier.urihttp://hdl.handle.net/10084/127355
dc.description.abstractInduction motors, as well as electrical drives, are widely used in industry applications and consume a large number of electrical energy in the world. Energy saving, torque fast response and speed accuracy are main area in controlling induction motors. During last years, control methods have been developed to get these goals. Among these control methods, field - oriented control (FOC) is more and more popular because of high performance, energy saving, controlled acceleration, etc. However, in controlling AC machine drive by using FOC, the motor speed is required. Together with the development of semiconductor technologies and digital signal processing (DSP), software instruments have been used to estimate speed, reducing hardware complexity and cost of a mechanical speed sensor. However, due to the nonlinearity, high order and multivariable properties of induction motor dynamics, the development of advanced induction motor control is still a challenging task. In this research proposal, basic description of the torque and flux control, as well as the theory and application of sliding mode algorithms are reviewed in details. From that, a sliding mode control algorithms for speed control is proposed to implement the pulse width modulation with a constant switching frequency. In addition, the sliding mode observer for speed estimation is investigated. The parameter sensitivity of the observer and controller are analyzed. Furthermore, the robustness of control and observer algorithms are also proved by Lyapunov’s criterion. Simulation models and control structures in MATLAB – Simulink environment are developed to verify the performance of the proposed algorithms. Finally, the experimental work in an induction motor drive controlled by eZdspTMF28335 is presented to compare with theoretical assumptions and simulation results.en
dc.description.abstractInduction motors, as well as electrical drives, are widely used in industry applications and consume a large number of electrical energy in the world. Energy saving, torque fast response and speed accuracy are main area in controlling induction motors. During last years, control methods have been developed to get these goals. Among these control methods, field - oriented control (FOC) is more and more popular because of high performance, energy saving, controlled acceleration, etc. However, in controlling AC machine drive by using FOC, the motor speed is required. Together with the development of semiconductor technologies and digital signal processing (DSP), software instruments have been used to estimate speed, reducing hardware complexity and cost of a mechanical speed sensor. However, due to the nonlinearity, high order and multivariable properties of induction motor dynamics, the development of advanced induction motor control is still a challenging task. In this research proposal, basic description of the torque and flux control, as well as the theory and application of sliding mode algorithms are reviewed in details. From that, a sliding mode control algorithms for speed control is proposed to implement the pulse width modulation with a constant switching frequency. In addition, the sliding mode observer for speed estimation is investigated. The parameter sensitivity of the observer and controller are analyzed. Furthermore, the robustness of control and observer algorithms are also proved by Lyapunov’s criterion. Simulation models and control structures in MATLAB – Simulink environment are developed to verify the performance of the proposed algorithms. Finally, the experimental work in an induction motor drive controlled by eZdspTMF28335 is presented to compare with theoretical assumptions and simulation results.cs
dc.format126 stran : ilustrace
dc.format.extent20839681 bytes
dc.format.mimetypeapplication/pdf
dc.language.isoen
dc.publisherVysoká škola báňská - Technická univerzita Ostravacs
dc.subjectinduction motoren
dc.subjectsliding mode controlen
dc.subjectsliding mode observeren
dc.subjectLyapunov’s theoryen
dc.subjectvector controlen
dc.subjectrotor resistance estimationen
dc.subjectrotor resistance estimationen
dc.subjectsensorless controlen
dc.subjectinduction motorcs
dc.subjectsliding mode controlcs
dc.subjectsliding mode observercs
dc.subjectLyapunov’s theorycs
dc.subjectvector controlcs
dc.subjectrotor resistance estimationcs
dc.subjectrotor resistance estimationcs
dc.subjectsensorless controlcs
dc.titleApplication of Sliding Mode Control in Induction Motor Driveen
dc.title.alternativeAplikace řízení v klouzavém režimu v pohonu s asynchronním motoremcs
dc.typeDisertační prácecs
dc.identifier.signature201800028
dc.identifier.locationÚK/Sklad diplomových prací
dc.contributor.refereeŠtěpanec, Libor
dc.contributor.refereeNeborák, Ivo
dc.contributor.refereeValouch, Viktor
dc.date.accepted2017-12-07
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.thesisDON0020_FEI_P2649_2642V004_2017
dc.rights.accessopenAccess


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