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Статті в журналах з теми "Asynchronous traction motor"
Liudvinavičius, Lionginas, Leonas Povilas Lingaitis, Stasys Dailydka, and Virgilijus Jastremskas. "THE ASPECT OF VECTOR CONTROL USING THE ASYNCHRONOUS TRACTION MOTOR IN LOCOMOTIVES." TRANSPORT 24, no. 4 (December 31, 2009): 318–24. http://dx.doi.org/10.3846/1648-4142.2009.24.318-324.
Повний текст джерелаKuznetsov, Valeriy, Ewa Kardas-Cinal, Piotr Gołębiowski, Borys Liubarskyi, Magomedemin Gasanov, Ievgen Riabov, Lilia Kondratieva та Michał Opala. "Method of Selecting Energy-Efficient Parameters of an Electric Asynchronous Traction Motor for Diesel Shunting Locomotives—Case Study on the Example of a Locomotive Series ChME3 (ЧMЭ3, ČME3, ČKD S200)". Energies 15, № 1 (3 січня 2022): 317. http://dx.doi.org/10.3390/en15010317.
Повний текст джерелаNguyen Quang Thieu and V. V. Markov. "Rational control laws asynchronous electric traction." Izvestiya MGTU MAMI 5, no. 1 (January 10, 2011): 70–76. http://dx.doi.org/10.17816/2074-0530-69863.
Повний текст джерелаDOROFEEV, O. V., V. I. VOROBYEV, M. I. BORZENKOV, O. V. IZMEROV, and S. N. ZLOBIN. "TRACTION DRIVE OF LOCOMOTIVES WITH HIGH MOMENTUM COLLECTOR TRACTION ELECTRIC MOTOR." Fundamental and Applied Problems of Engineering and Technology 2 (2021): 118–29. http://dx.doi.org/10.33979/2073-7408-2021-346-2-118-129.
Повний текст джерелаOvsyannikov, E. M., B. A. Ivobotenko, V. M. Yurkevich, and E. M. Koshelyev. "Direct torque control of asynchronous traction motor." Izvestiya MGTU MAMI 7, no. 2-1 (January 20, 2013): 188–94. http://dx.doi.org/10.17816/2074-0530-68300.
Повний текст джерелаGoolak, Sergey, Viktor Tkachenko, Pavol Šťastniak, Svitlana Sapronova, and Borys Liubarskyi. "Analysis of Control Methods for the Traction Drive of an Alternating Current Electric Locomotive." Symmetry 14, no. 1 (January 13, 2022): 150. http://dx.doi.org/10.3390/sym14010150.
Повний текст джерелаSulym, A. "A METHODOLOGY TO SELECT ASYNCHRONOUS TRACTION ELECTRIC DRIVE FOR INNOVATIVE METRO ROLLING STOCK." Collection of scientific works of the State University of Infrastructure and Technologies series "Transport Systems and Technologies" 1, no. 37 (June 29, 2021): 97–118. http://dx.doi.org/10.32703/2617-9040-2021-37-11.
Повний текст джерелаFedotov, Ilya, and Vyacheslav Tikhonov. "Simulation of Traction Electric Drive with Vector Systems of Direct Torque Control." Environment. Technology. Resources. Proceedings of the International Scientific and Practical Conference 2 (August 8, 2015): 106. http://dx.doi.org/10.17770/etr2013vol2.846.
Повний текст джерелаTitova, T. S., A. M. Evstaf’ev, and A. A. Pugachev. "Vector control system of electric traction drive with power losses minimization." Journal of Physics: Conference Series 2131, no. 4 (December 1, 2021): 042090. http://dx.doi.org/10.1088/1742-6596/2131/4/042090.
Повний текст джерелаRiabov, I., S. Sapronova, V. Tkachenko, S. Goolak, and R. Keršys. "CALCULATION OF TRACTION AND ENERGY CHARACTERISTICS ELECTRIC ROLLING STOCK WITH ASYNCHRONOUS TRACTION ELECTRIC DRIVE." Collection of scientific works of the State University of Infrastructure and Technologies series "Transport Systems and Technologies" 1, no. 38 (December 24, 2021): 141–52. http://dx.doi.org/10.32703/2617-9040-2021-38-138-13.
Повний текст джерелаДисертації з теми "Asynchronous traction motor"
Papazian, Jean-Charles. "Optimisation de la chaine de traction d'un véhicule électrique." Grenoble INPG, 1996. http://www.theses.fr/1996INPG0100.
Повний текст джерелаПетренко, Олександр Миколайович. "Наукові основи вибору оптимальних параметрів та режимів роботи систем охолодження асинхронних тягових двигунів електротранспорту". Thesis, НТУ "ХПІ", 2018. http://repository.kpi.kharkov.ua/handle/KhPI-Press/35301.
Повний текст джерелаThesis for the degree of Doctor of Engineering in specialty 05.22.09 "Electric transport " - National Technical University "Kharkiv Polytechnic Institute" MES of Ukraine, Kharkov, 2018. The thesis is devoted to the creation of scientific foundations for the selection of optimal parameters and operating modes for cooling systems for asynchronous traction motors of electric transport. An algorithm for solving the Hamilton-Jacobi-Bellman equation for the problem of the motion of an electric stock on a section of a track with a given profile and a traffic schedule is developed. That makes it possible to create an expert control system for motion. Features of this algorithm is the use of penalty functions to describe the restrictions imposed by the traffic schedule: the train reaches the destination point for a given driving time, the speed limit on the sections of the track, and the absence of train idle time during the movement. A single approach to penalty functions is also applied to introduce constraints on the adhesion. This approach allows to reduce significantly the costs of the estimated time and to simplify the procedures for calculating energy costs. A mathematical model is created to determine the efficiency of the traction drive. The model includes the determination of the main losses in an asynchronous traction motor, taking into account the saturation of the magnetic system, which is determined by the results of solving a recurrent nonlinear equation. Also, the model takes into account losses from higher harmonic stresses in copper and steel, mechanical and additional losses. The developed model takes into account static and dynamic losses in IGBT transistors and diodes of a semiconductor converter. A method for optimizing the parameters and operating modes of cooling systems for asynchronous traction motors of the electric stock is developed. It consists of the following main stages: determination of the optimum mode of the traction drive operation on the basis of the proposed expression of its efficiency; determination of optimum modes of movement of the electric stock by the criterion of minimum costs; solution of the traction problem of motion on a section of the track with a specified traffic schedule and the track profile, as well as the determination of the dependence of the change in losses in the elements of asynchronous traction engines in time; choice of parameters and operation modes of cooling systems for asynchronous traction motors, which determine the efficiency of the cooling and ventilation system of the electric stock; solution of the problem of relative minimization of the cooling system for asynchronous traction motors with a modernized criterion of economic efficiency based on the Weil method on the generalized golden section and the problem of analyzing the ventilation and cooling system of traction motors, which is based on the mathematical model of thermal motor conditions by the generalized equivalent thermal scheme.
Петренко, Олександр Миколайович. "Наукові основи вибору оптимальних параметрів та режимів роботи систем охолодження асинхронних тягових двигунів електротранспорту". Thesis, НТУ "ХПІ", 2018. http://repository.kpi.kharkov.ua/handle/KhPI-Press/35328.
Повний текст джерелаThesis for the degree of Doctor of Engineering in specialty 05.22.09 "Electric transport " - National Technical University "Kharkiv Polytechnic Institute" MES of Ukraine, Kharkov, 2018. The thesis is devoted to the creation of scientific foundations for the selection of optimal parameters and operating modes for cooling systems for asynchronous traction motors of electric transport. An algorithm for solving the Hamilton-Jacobi-Bellman equation for the problem of the motion of an electric stock on a section of a track with a given profile and a traffic schedule is developed. That makes it possible to create an expert control system for motion. Features of this algorithm is the use of penalty functions to describe the restrictions imposed by the traffic schedule: the train reaches the destination point for a given driving time, the speed limit on the sections of the track, and the absence of train idle time during the movement. A single approach to penalty functions is also applied to introduce constraints on the adhesion. This approach allows to reduce significantly the costs of the estimated time and to simplify the procedures for calculating energy costs. A mathematical model is created to determine the efficiency of the traction drive. The model includes the determination of the main losses in an asynchronous traction motor, taking into account the saturation of the magnetic system, which is determined by the results of solving a recurrent nonlinear equation. Also, the model takes into account losses from higher harmonic stresses in copper and steel, mechanical and additional losses. The developed model takes into account static and dynamic losses in IGBT transistors and diodes of a semiconductor converter. A method for optimizing the parameters and operating modes of cooling systems for asynchronous traction motors of the electric stock is developed. It consists of the following main stages: determination of the optimum mode of the traction drive operation on the basis of the proposed expression of its efficiency; determination of optimum modes of movement of the electric stock by the criterion of minimum costs; solution of the traction problem of motion on a section of the track with a specified traffic schedule and the track profile, as well as the determination of the dependence of the change in losses in the elements of asynchronous traction engines in time; choice of parameters and operation modes of cooling systems for asynchronous traction motors, which determine the efficiency of the cooling and ventilation system of the electric stock; solution of the problem of relative minimization of the cooling system for asynchronous traction motors with a modernized criterion of economic efficiency based on the Weil method on the generalized golden section and the problem of analyzing the ventilation and cooling system of traction motors, which is based on the mathematical model of thermal motor conditions by the generalized equivalent thermal scheme.
Bílý, Lukáš. "Simulační modely elektrických pohonů vozidel." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2011. http://www.nusl.cz/ntk/nusl-219228.
Повний текст джерелаVelly, Nicolas. "Contributions à l’étude de machines multi-enroulements pour l’aéronautique : machine synchrone à aimants permanents pour la tolérance aux défauts : machine asynchrone pour la traction." Thesis, Vandoeuvre-les-Nancy, INPL, 2011. http://www.theses.fr/2011INPL022N/document.
Повний текст джерелаThe more electrical aircraft project aims at replacing most of current power generation sources by electrical ones. Consequently this replacement might generate a significant decrease of the fuel consumption. Through this thesis we determine two electrical solutions allowing on the one hand the increase of disponibility level of the actuators and on the other handthe aircraft taxiing by electrical means. We firstly focused on electrical actuators that require electrical redundancy. A first mean to achieve this redundancy is to use two actuators. Nevertheless this solution is not relevant under the reliability constraint because the global failure rate is increased. A double star permanent magnet synchronous motor with concentrated winding is proposed in which a special care was taken to the short circuit current limitation and the magnetic decoupling between the two star winding. We established a semi-analytic model for this kind of motors to predict the amplitude of the resultant of the radial forces acting on the rotor of the machine when operating under normal and faulty operation. We established the model of the machine in order to determine the command strategy. We experimentally validated all of the design principles mentioned above through a prototype designed in the laboratory and built by one of the SAFRAN group company. We secondly investigated on the way to apply the multi winding principles to a brand new project linked to the aircraft taxiing called “green taxiing”. The goal is to obtain a motor topology that allows operating on a wide speed range thanks to the command strategy and the change of its torque coefficient. We established the model of the machine and we compared the results given by this ingenious model to the results given by a finite element resolution using a transient magnetic application
Гейко, Геннадій Вікторович. "Моделі, методи та програмні компоненти бортової комп'ютерної системи дизель-поїзда". Thesis, Національний технічний університет "Харківський політехнічний інститут", 2019. http://repository.kpi.kharkov.ua/handle/KhPI-Press/40881.
Повний текст джерелаThere is the dissertation of the obtaining the scientific degree of the technical sciences candidate in specialty 05.13.05 – computer systems and components – National Technical University "Kharkiv Polytechnic Institute", Kharkiv, 2019. The dissertation solves the scientific and practical problem of development and researching models, methods and software components of the diesel-train onboard computer control system to clarify the traction calculations method. The dissertation proposes a method and a software component that identifies the parameters of the diesel-train model and takes into account changes in the parameters of the electric drive during the movement of the diesel-train, it also adjusts the electric drive model parameters in real time, which makes it possible to calculate the control actions parameters to control the object. A method and a software component, that implements the calculation of the stator current value of each traction asynchronous motor not by the mean, but by the effective value of its first harmonic, have been developed, it made possible to clarify the law of the electric drive control. A mathematical model, that allows to research the processes of the electric drive that occur during slipping of the wheelsets, has been developed. A method and a software component for detecting the slipping of the wheelsets of a diesel-train using fuzzy logic has been proposed, the usage of which allows to detect a synchronous and an individual wheelsets slipping, reduce the time of detection of the wheelsets slipping and improve the traction properties of the diesel-train. A software component that implements the algorithm of the recurrent neural network, which, along with identifying the deviation of parameters from the optimal values at each position of the train driver controller, provides operational control of exceeding the object’s limit values and defines the processes that are associated with the nodes of the object that operate in the abnormal mode, has been developed. That improved the quality of control and diagnostics of the diesel-train. Experimental studies of the improved computer control system of the diesel-train DEL-02, at the level of mathematical modeling and at the real facility, confirmed the validity of the proposed solutions to clarify the traction calculations method.
Гейко, Геннадій Вікторович. "Моделі, методи та програмні компоненти бортової комп'ютерної системи дизель-поїзда". Thesis, Національний технічний університет "Харківський політехнічний інститут", 2019. http://repository.kpi.kharkov.ua/handle/KhPI-Press/40880.
Повний текст джерелаThere is the dissertation of the obtaining the scientific degree of the technical sciences candidate in specialty 05.13.05 – computer systems and components – National Technical University "Kharkiv Polytechnic Institute", Kharkiv, 2019. The dissertation solves the scientific and practical problem of development and researching models, methods and software components of the diesel-train onboard computer control system to clarify the traction calculations method. The dissertation proposes a method and a software component that identifies the parameters of the diesel-train model and takes into account changes in the parameters of the electric drive during the movement of the diesel-train, it also adjusts the electric drive model parameters in real time, which makes it possible to calculate the control actions parameters to control the object. A method and a software component, that implements the calculation of the stator current value of each traction asynchronous motor not by the mean, but by the effective value of its first harmonic, have been developed, it made possible to clarify the law of the electric drive control. A mathematical model, that allows to research the processes of the electric drive that occur during slipping of the wheelsets, has been developed. A method and a software component for detecting the slipping of the wheelsets of a diesel-train using fuzzy logic has been proposed, the usage of which allows to detect a synchronous and an individual wheelsets slipping, reduce the time of detection of the wheelsets slipping and improve the traction properties of the diesel-train. A software component that implements the algorithm of the recurrent neural network, which, along with identifying the deviation of parameters from the optimal values at each position of the train driver controller, provides operational control of exceeding the object’s limit values and defines the processes that are associated with the nodes of the object that operate in the abnormal mode, has been developed. That improved the quality of control and diagnostics of the diesel-train. Experimental studies of the improved computer control system of the diesel-train DEL-02, at the level of mathematical modeling and at the real facility, confirmed the validity of the proposed solutions to clarify the traction calculations method.
Pokálený, Jan. "Trakční pohon elektromobilu napájený vodíkovým palivovým článkem." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2008. http://www.nusl.cz/ntk/nusl-217584.
Повний текст джерелаMehazzem, Fateh. "Contribution à la commande d’un moteur asynchrone destiné à la traction électrique." Thesis, Paris Est, 2010. http://www.theses.fr/2010PEST1032/document.
Повний текст джерелаThe work presented in this thesis aims to contribute to the control and observation of the induction machines for electric traction. Several algorithms have been developed and implemented. After a fast presentation of the classical vector control, new approaches of non-linear control are proposed : the classical backstepping and integral backstepping. A second part deals with the observation and the estimation of parameters and states of the machine, based on MRAS-Sliding Mode structures on one hand and on synchronous filtering structures on the other hand. A detailed analysis of the operation at low speed led us to propose an original solution for a Sensorless control. The torque degradation in field weakening zone was treated by a voltage regulation controller. Finally, we proposed losses minimization algorithm for the Inverter-Machine set
Частини книг з теми "Asynchronous traction motor"
Zhang, Tiezhu, and Qiongjie Zhang. "Research on the Directional Control of Direct Magnetic Field of the Locomotive Asynchronous Traction Motor." In Advances in Intelligent Systems and Computing, 168–73. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-15235-2_26.
Повний текст джерелаТези доповідей конференцій з теми "Asynchronous traction motor"
Omelchenko, Evgeniy, Timur Khramshin, Vasiliy Tanich, and Igor Kozhevnikov. "Dynamic Computer Model of Traction Asynchronous Motor." In 2019 IEEE Russian Workshop on Power Engineering and Automation of Metallurgy Industry: Research & Practice (PEAMI). IEEE, 2019. http://dx.doi.org/10.1109/peami.2019.8915408.
Повний текст джерелаPopescu, Mihaela, Alexandru Bitoleanu, Mircea Dobriceanu, and Lavinius Goreci. "Optimal Control Method of an Asynchronous Traction Motor." In 2019 11th International Symposium on Advanced Topics in Electrical Engineering (ATEE). IEEE, 2019. http://dx.doi.org/10.1109/atee.2019.8724969.
Повний текст джерелаVavilov, Viacheslav, Alexey Zherebtsov, Oxana Yushkova, Albina Nurieva, Ayaz Bakirov, Iskander Garipov, Denis Zhuravlev, and Artur Gulin. "Verification of the Thermal Model of an Asynchronous Traction Motor." In 2021 International Conference on Electrotechnical Complexes and Systems (ICOECS). IEEE, 2021. http://dx.doi.org/10.1109/icoecs52783.2021.9657382.
Повний текст джерелаTvoric, S., B. Tomicic, and S. Car. "Calculation of asynchronous traction motor start-up characteristics by FEM method." In 2012 International Symposium on Power Electronics, Electrical Drives, Automation and Motion (SPEEDAM 2012). IEEE, 2012. http://dx.doi.org/10.1109/speedam.2012.6264374.
Повний текст джерелаKopanev, M. V., and M. O. Arsentyev. "Modeling of asynchronous traction motor operation modes while turning locomotive wheelsets bandages." In International Conference "Aviamechanical engineering and transport" (AVENT 2018). Paris, France: Atlantis Press, 2018. http://dx.doi.org/10.2991/avent-18.2018.37.
Повний текст джерелаYu, Shuang, Weilin Shang, Yujin Zhang, Qi Li, and Weirong Chen. "Control of hybrid locomotive based on two-level traction inverter of asynchronous motor." In 2017 IEEE Transportation Electrification Conference and Expo, Asia-Pacific (ITEC Asia-Pacific). IEEE, 2017. http://dx.doi.org/10.1109/itec-ap.2017.8080853.
Повний текст джерелаByung-Taek Kim, Byung-Il Kwon, and Seung-Chan Park. "Reduction of electromagnetic force harmonics in asynchronous traction motor by changing rotor slot number." In IEEE International Magnetics Conference. IEEE, 1999. http://dx.doi.org/10.1109/intmag.1999.837614.
Повний текст джерелаRaluca-Cristina, Nicolae, Vlad Ion, Nicolae Marian-Stefan, and Enache Sorin. "Investigation of Idle Running and Short-Circuit Performance Improvement for an Asynchronous Traction Motor." In 2019 International Conference on Electromechanical and Energy Systems (SIELMEN). IEEE, 2019. http://dx.doi.org/10.1109/sielmen.2019.8905795.
Повний текст джерелаAtiyah, Ahmad, and Bohumil Sulc. "Exploitability of Information Obtainable from Asynchronous Motor in a Wheel-set Drive to Traction Optimizing." In 2021 22nd International Carpathian Control Conference (ICCC). IEEE, 2021. http://dx.doi.org/10.1109/iccc51557.2021.9454616.
Повний текст джерелаPrabudha, B. V., Vikas Kumar, T. Selvathai, and Rajaseeli Reginald. "Design of Series Hybrid Electric Vehicle using Asynchronous machine as Traction Motor and Integrated Starter Generator." In IECON 2019 - 45th Annual Conference of the IEEE Industrial Electronics Society. IEEE, 2019. http://dx.doi.org/10.1109/iecon.2019.8927116.
Повний текст джерела