• Title/Summary/Keyword: Magnetizing analysis

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Characteristic Analysis of Linear Induction Motor Considering Multi-Region Traveling-wave problems (다중층 해석법을 이용한 직선형 유도전동기의 특성 해석)

  • Jang, Seok-Myeong;Cho, Sung-Kook;Lee, Sung-Ho;Cho, Han-Wook;Kweon, Jung-Ki
    • Proceedings of the KIEE Conference
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    • 2003.07b
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    • pp.1033-1035
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    • 2003
  • Linear induction motor with multilayer region of the single-sided is analyzed considering multi region traveling wave problem. A hybrid method of analysis consisting of field analysis in conjunction with the multilayer transfer matrix concept with adjustment of secondary iron permeability to match the tangential magnetizing field in each layer is developed.

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Analysis of Operating Characteristic of Self Excited Induction Generator with Steinmetz Connection (스타인메츠결선 자기여자 유도발전기의 운전특성 분석)

  • Kang, Sang-Su;Jwa, Chong-Keun
    • The Transactions of the Korean Institute of Electrical Engineers P
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    • v.57 no.4
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    • pp.383-387
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    • 2008
  • This paper analyzes the operation characteristics of a self excited induction generator with Steinmetz connection. For this analysis, the symmetrical components analysis is used to obtain the related expressions and the excitation capacitance and the magnetizing reactance are determined in turn by the condition of self excitation which includes the input impedance of the generator as viewed across load terminals. Two simultaneous equations of the condition of self excitation itself are solved by using the real and imaginary function in an application software. This method is applied to simulate the operation characteristics when the generator is driven at rated speed and the specified excitation capacitor is connected across the lagging phase. The results show that better operation characteristics except generated frequency are obtained by using relatively large excitation capacitance and resistive load.

PM Magnetization Characteristics Analysis of a Post-Assembly Line Start Permanent Magnet Motor using coupled Preisach Modeling and Finite Element Method (프라이자흐 모델링과 유한요소법을 이용한 라인 스타트 영구자석 전동기의 영구자석 자화 특성 분석)

  • Rha, Young-Gak;Lee, Jung-Ho
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.63 no.4
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    • pp.469-475
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    • 2014
  • This paper deals with the characteristics evaluations of PM magnetization using stator coil in a Post-Assembly Line Start Permanent Magnet Motor (LSPMM) using a coupled Finite Element Method (FEM) and Preisach modeling, which is presented to analyze the magnetic characteristics of permanent magnets. The focus of this paper is the characteristics analysis relative to magnetizing direction and quantity of permanent magnets due to the eddy current occurring in the rotor bar during magnetization of Nd-Fe-B.

Performance Analysis of Brushless DC Motor According to Polar Magnetizing Characteristic of Ferrite Bonded Permanent Magnet (페라이트 본드 영구자석의 극이방 자화특성에 따른 BLDC 모터의 특성해석)

  • Baek, Soo-Hyun
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.59 no.12
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    • pp.2173-2178
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    • 2010
  • The magnetization directions of a polar magnetized ferrite bonded magnet are analyzed by finite element method (FEM). The influence of the width of SmCo magnets for magnetic field generation is investigated. The surface flux densities of the polar anisotropic magnets are analyzed and compared according to the pole number and thickness of the magnets. And the electromotive force (EMF) values of brushless DC motors with the magnets are investigated. The validity of the analysis method is verified by comparing the analyzed results with measured ones.

Characteristic Analysis of Capacitor Run Single-Phase Induction Motor by Equivalent Circuit Method (등가회로법에 의한 커패시터 구동 단상 유도전동기의 특성해석)

  • Jwa, Chong-Keun;Kim, Ho-Min;Kim, Do-Jin
    • The Transactions of the Korean Institute of Electrical Engineers P
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    • v.60 no.4
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    • pp.220-226
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    • 2011
  • This paper proposes a straightforward method of analyzing the operation characteristics for the capacitor run single-phase induction motor from the traditional equivalent circuit based on the revolving field theory. The proposed method consists of five procedures as follows: mechanical loss segregation, iron loss segregation and calculation of the equivalent circuit parameters, recalculation of parameters of the main winding side, calculation of the auxiliary winding magnetizing reactance and effective turn ratio, and analyzing the operation characteristics for this motor. When the characteristics are analyzed, the segregated mechanical and iron losses are considered as a loss resistance across input terminals of the equivalent circuit for the analysis. The validity of the proposed method is verified from the comparison between the computed results and the experimental ones for the operation characteristics.

Analysis for the Reactive Power Changes of Induction Machines According to Rotation Speed (회전속도에 따른 유도기의 무효전력 변화 분석)

  • Kim, Jong-Gyeum;Park, Young-Jeen
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.29 no.3
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    • pp.96-101
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    • 2015
  • Induction machine requires a rotating magnetic field for energy conversion. The current to generate a rotating magnetic field is the magnetization current. This magnetization current corresponds to the reactive power. Reactive power is higher than active power at start-up of induction motor. As the rotation speed is increased, their magnitudes are reversed each other. The active power is higher than the reactive power at near the synchronous speed. This paper is dealing with the analysis result for the changes of the magnetizing current and reactive power when the induction machine is operating as a motor or generator near synchronous speed.

Analysis of A Fixed Frequency LCL-type DC-DC Converter Including the Effect of High-Frequency Transformer (변압기 영향을 포함한 고정주파수 LCL형 DC-DC 컨버터 해석)

  • Park, Sangeun;Cha, Hanju
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.65 no.1
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    • pp.81-87
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    • 2016
  • An LCL-type Isolated dc-dc converter operating for constant output voltage is analyzed, including the effect of a high frequency transformer using ac complex circuit approximation. Its solution is derived and is used to obtain the characteristics of the proposed converter. The analyses show through converter modeling, phasor diagram and gain comparison that inclusion of a high frequency transformer results in introduction of magnetizing inductance and leakage inductances at conventional LCL dc-dc converter with ideal transformer. The theoretical and simulation results are presented in case of the wide variations in input voltage and load current in detail. Analysis and simulation results observed that introduction of a transformer in the dc-dc converter had considerable effect on the performance, especially in the case of low output voltage and large load.

Analysis of Contact Force in Eddy-current System Using the Virtual Air-Gap Concept

  • Park, Byung Su;Kim, Hwi Dae;Choi, Hong Soon;Park, Il Han
    • Journal of Electrical Engineering and Technology
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    • v.10 no.3
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    • pp.1349-1355
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    • 2015
  • It is difficult to calculate the magnetic force of an object of magnetic material in contact with other objects using the existing methods, such as Maxwell stress tensor method, magnetic charge method, or magnetizing current method. These methods are applicable for force computation only when the object is surrounded by air. The virtual air-gap concept has been proposed for calculating the contact force. However, its application is limited to magneto-static system. In this paper, we present the virtual air-gap concept for contact surface force in the eddy-current system. Its validity and usefulness are shown by comparison between numerical and experimental examples.

Magnetic Flux Saturation Analysis of Matching Transformer Considering Characteristic of Dynamic Voltage Restorer(DVR) (DVR의 특성을 고려한 매칭변압기의 자속포화 해석)

  • Shon, Jin-Geun;Kim, Dong-Joon;Kang, Min-Gu;Jeon, Hee-Jong
    • The Transactions of the Korean Institute of Electrical Engineers P
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    • v.57 no.3
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    • pp.236-243
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    • 2008
  • This paper analyses magnetic flux saturation of matching transformer considering characteristic of dynamic voltage restorer(DVR) system to solve voltage sags which are considered the dominant disturbances affecting power quality. This DVR consist of PWM inverter to inject arbitrary voltage, LC low pass filter and matching transformer for isolation and grid connection. However, the matching transformer has an excess of inrush current by magnetic flux saturation in the core of transformer. Due to this inrush current, the rating of matching transformers is double for needed nominal rating for protection of DVR. Therefore, in this paper, an advanced modeling method of magnetic flux saturation is used to analyze a magnitude and characteristic of magnetizing current. Simulation and experimental results considering characteristic of DVR system are provided to demonstrate the validity of the proposed analysis method.

Analysis of Single-phase Induction Motor Having Space Harmonics in Its Magnetic Field (고주파자속을 고려한 단순상유도전동기의 해석)

  • Keung Yul Oh
    • 전기의세계
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    • v.22 no.3
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    • pp.25-34
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    • 1973
  • In this paper, the characteristics of a single phase induction motor which is considered the space harmonic flux by the double revolving field theory is analysed. As the rotor resistance for the fundamental flux is separated from the resistance for the rotor bar and end-ring, and the rotor leakage reactnace is separated from the skew leakage reactance and the other, so the circuit constants for the space harmonic flux is expressed by the circuit constants for the fundamentals. As the ratio of the circuit constants for the magnetizing reactance is used, the generalized equivalent circuit is made up. the characteristic equation which is able to analysis the subdivided characteristics by the above circuit is induced. The ratio of the circuit constants and the skew angle being changed, the variations of the torque-speed characteristics for the fundamentals and harmonics is examined by this equation.

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