Tae-Sun Moon
Doosan Heavy Industries & Construction
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Featured researches published by Tae-Sun Moon.
IEEE Transactions on Applied Superconductivity | 2005
Y.K. Kwon; Myung-Hwan Sohn; S.K. Baik; E.Y. Lee; J.M. Kim; Tae-Sun Moon; Heui-Joo Park; Y.C. Kim; K. Ryu
A 3-phase, 100 hp, 4 pole, 1800 rpm superconducting synchronous motor built and tested in Korea Electrotechnology Research Institute(KERI). This machine consists of HTS rotor and air-core stator. The HTS field windings are composed of the double-pancake coils wound with AMSCs stainless steel-reinforced Bi-2223 tape conductor. These were assembled on the support structure and fixed by a bandage of glass-fiber composite. The cooling system is based on the heat transfer mechanism of the thermosyphon by using GM cryocooler as cooling source. The cold head is in contact with the condenser of a Ne-filled thermosyphon. The rotor assembly was tested independently at the stationary state and combined with stator. The open circuit, no-load, and short circuit characteristic were obtained. Also, load tests in motor mode driven by inverter and generator mode connected to resister load bank were conducted. This paper will present design, construction, and experimental test results of the 100 hp HTS machine.
IEEE Transactions on Applied Superconductivity | 2007
Y.K. Kwon; S.K. Baik; E.Y. Lee; Jae-Hun Lee; J.M. Kim; Y.C. Kim; Tae-Sun Moon; Heui-Joo Park; Woon-Sik Kwon; Jung-Pyo Hong; Young-Sik Jo; K. Ryu
This work is development of HTS motor at DOOSAN heavy industry and Korea Electrotechnology Research Institute in Korea, and is sponsored by DAPAS program which is supported by Korean government. The final aim of the project is realization of HTS motor in the field of industry such as large driving pumps, fans and compressors for utility and industrial environments. In the first phase (2001-2004), 100 hp HTS motor was developed in order to implement the preliminary technology for the large applicable HTS motor. All of the performance characteristics are well met to the designed ones. In second phase (2004-2007), 1 MW HTS motor is developed for the purpose to fully represent the design and manufacturing issues for the larger capacity machine. The machine is 2 pole and 3600 rpm, and all of the components are completely manufactured. This machine is now under assembly. This paper summarizes the status of 1 MW HTS motor development, such as design, construction, and experimental test results.
IEEE Transactions on Applied Superconductivity | 2007
Jaedeuk Lee; Young-Kil Kwon; Seung-Kyu Baik; Eon-Yong Lee; Young-chun Kim; Tae-Sun Moon; Heui-ju Park; Woon-sik Kwon; Jung-Pyo Hong; Minwon Park; In-Keun Yu; Young-Sik Jo
In large scale applications, such as SMES, motors and generators, High Temperature Superconducting (HTS) magnets are constructed with many stacks of the double-pancake coils connected in series. In spite of its higher thermal stability, HTS magnet can experience a severe quench, which can resulted from a very small portion. From HTS magnet design point of view, it is very important to predict the possibility of occurrence quench in the designed magnet to provide a suitable quench protection device. In this paper a highly instrumented HTS race track double-pancake coil was prepared to examine the quench development characteristics. It is wound using the Bi-2223 tape. Many voltage taps, cryogenic thermocouples and heater were installed in the winding. Conduction cooling method is adapted for the convenience of temperature. Quench development in the coil was measured under different operating current. The experimental details and results are presented in this paper.
IEEE Transactions on Applied Superconductivity | 2006
S.K. Baik; Myung-Hwan Sohn; E.Y. Lee; Y.K. Kwon; Tae-Sun Moon; Heui-Joo Park; Y.C. Kim
Synchronous reactance is an important parameter of synchronous rotating machine because it affects on the machine output capacity, voltage variation and steady-state stability. The superconducting synchronous rotating machine has very small synchronous reactance about 1/5 of the conventional synchronous machine. This reason comes from the fact that the superconducting rotating machine is air-cored structure. In this paper, it is estimated how much this synchronous reactance has influences on many design parameters of superconducting synchronous machine such as machine volume and weight, efficiency, voltage variation and so on. In the case of a synchronous motor, the power factor can be adjusted according to the excitation voltage. This paper also deals with the effects of power factor on the design parameters and the performance of a HTS (High-temperature Superconducting) synchronous motor. This kind of analysis was used to design 1 MW class HTS motor
2007 IEEE Power Engineering Society General Meeting | 2007
Y.K. Kwon; S.K. Baik; E.Y. Lee; J.D. Lee; Y.C. Kim; Tae-Sun Moon; Heui-Joo Park; Woon-Sik Kwon; Sun-Kyung Lee; Jung-Pyo Hong; Y.S. Jo; K.S. Ryu
This work is development activities of HTS motor at DOOSAN heavy industry and Korea Electrotechnology Research Institute in Korea, and is sponsored by DAPAS program which is supported by Korean government. The final aim of the project is realization of HTS motor in the field of industry such as large driving pumps, fans and compressors for utility and industrial environments. At present time, 1 MW HTS motor is developed for the purpose to fully represent the design and manufacturing issues for the larger capacity machine. The machine is 2 pole and 3,600 rpm, and all of the components are completely manufactured. Preliminary performance test of this machine was already finished, and is ready for long run reliability test. This paper summarizes the status of 1 MW HTS motor development, such as design, construction, and experimental test. As a next step target, ship propulsion motor is considered, so that middle class such capacity as 5 MW, and large class such capacity as 20 MW HTS motor are conceptually designed. The outline and conceptual design results for homopolar and air-core type superconducting motor which apply to low-speed high power pod propulsion application are discussed i n this paper.
IEEE Transactions on Applied Superconductivity | 2005
S.K. Baik; Myung-Hwan Sohn; E.Y. Lee; Y.K. Kwon; Young-Sik Jo; Tae-Sun Moon; Heui-Joo Park; Y.C. Kim
A 1 MW class superconducting synchronous motor is designed considering several conditions such as superconducting wire length, machine efficiency and size. As the machine is larger and larger, the superconducting machine shows the advantages more and more over the conventional machines. Although the advantages at 1 MW rating are not so great, the design approach to get an appropriate result would be very helpful for larger superconducting synchronous machine design. Major design concerns are focused on reducing expensive Bi-2223 HTS (High Temperature Superconducting) wire which is used for superconducting field coil carrying the rating current around 30 K (-243/spl deg/C) while the machine efficiency is higher than conventional motors or generators with the same rating. Furthermore, some iron-cored structure is considered to reduce the HTS wire requirement without bad effect on machine performances such as sinusoidal armature voltage waveform, synchronous reactance and so on.
IEEE Transactions on Applied Superconductivity | 2007
Seung-Kyu Baik; Young-Kil Kwon; E.Y. Lee; Jaedeuk Lee; Jung-Pyo Hong; Y.C. Kim; Tae-Sun Moon; Heui-Joo Park; Woon-Sik Kwon
A 1 MW class superconducting synchronous rotating machine has been designed as a draft based on 2-dimensional (2D) magnetic field distribution considering several conditions such as superconducting wire length, machine efficiency, size and so on. By the way from 2D design it is not possible to consider the effect of end coils and end portions of stator iron yoke especially in superconducting machine with air-cored structure which increases magnetic field difference between 2D and 3D analysis. In this paper electrical design based on the 3D magnetic field distribution is conducted to get more proper design result and reduce design errors from 2D design approach. As the machine has larger capacity, the superconducting machine will show the advantages more and more over the conventional machine. Although the advantages at 1MW rating are not so great, the 3D design approach to get more optimized result would be very helpful for larger superconducting synchronous machine design. Through 3D analysis such as EMCN (equivalent magnetic circuit network) method and Flux-3D FEM (finite element method), we could get smaller machine size, higher efficiency, and smaller Bi-2223 HTS (high temperature superconducting) wire length than the 2D design result. Moreover influence of an important parameter, synchronous reactance, has been analysed on the machine performances such as voltage variation and output power.
Archive | 2006
Heui-Joo Park; Y.C. Kim; Tae-Sun Moon; Woon-Sik Kwon
Archive | 2006
Woon-Sik Kwon; Y.C. Kim; Tae-Sun Moon; Heui-Joo Park
Archive | 2007
Woon-Sik Kwon; Y.C. Kim; Tae-Sun Moon; Heui-Joo Park