• Title/Summary/Keyword: Pole Changing Motor

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Development of the Pole Changing Induction Motor (극수 변환 유도모터의 개발)

  • Yun, Dong-Won;Son, Young-Su;Park, Cheol-Hun;Ham, Sang-Yong;Kim, Byung-In
    • Journal of the Korean Society for Precision Engineering
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    • v.28 no.1
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    • pp.102-107
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    • 2011
  • In this paper, pole-changing induction motor has been studied. To control the speed of the induction motor, many various methods can be used. Compared to the other speed control method, pole changing method is simple, cost effective, and reliable. From this research, pole changing induction motor with 2 and 4 pole windings are analyzed and designed, of which rated torque is about 2Nm. A real induction motor is also fabricated and some experiment has been performed showing that the analysis and experiment results are similar.

Characteristics Analysis in A Pole Changing Memory Motor Using Coupled FEM & Preisach Modeling (유한요소법과 프라이자흐모델이 결합된 해석기법을 이용한 Pole Changing Memory Motor의 동특성해석)

  • Lee, Seung-Chul;Song, Han-Sang;Lee, Jung-Ho
    • Proceedings of the KIEE Conference
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    • 2011.07a
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    • pp.1137-1138
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    • 2011
  • This paper deals with the PM performance evaluations in a pole changing memory motor (PCMM) using a coupled transient 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 evaluation relative to magnetizing direction and the pole number of machine on re-, demagnetization condition in a pole changing memory motor.

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Characteristics Analysis in A Pole Changing Memory Motor Using Coupled FEM & Preisach Modeling (유한요소법과 프라이자흐 모델이 결합된 해석기법을 이용한 극 변환 메모리모터의 동특성해석)

  • Lee, Seung-Chul;Lee, Jung-Ho
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.60 no.5
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    • pp.965-970
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    • 2011
  • This paper deals with the PM performance evaluations in a pole changing memory motor (PCMM) using a coupled transient 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 evaluation relative to magnetizing direction and the pole number of machine on re-demagnetization condition in a pole changing memory motor.

Magnetization Characteristics Analysis in a Pole Changing Memory Motor Using Coupled FEM and Preisach Modeling

  • Lee, Jung-Ho;Lee, Seung-Chul
    • Journal of Magnetics
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    • v.16 no.4
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    • pp.386-390
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    • 2011
  • This paper deals with the magnetic equivalent circuit modeling and permanent magnet (PM) performance evaluations of a pole changing memory motor (PCMM). We use a coupled transient finite element method (FEM) and Preisach modeling, which is presented to analyze the magnetic characteristics of the permanent magnets. The focus of this paper is on the evaluation of characteristics such as the magnetizing direction and the pole number of the machine under re- and de-magnetization conditions.

Dynamic Characteristics Analysis in A Pole Changing Memory Motor Using Coupled FEM & Preisach Modeling (유한요소법과 프라이자흐 모델을 이용한 극 변화 메모리 모터의 동특성 해석)

  • Lee, Tae-Hoon;Moon, Sung-Joo;Lee, Jung-Ho
    • Proceedings of the KIEE Conference
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    • 2009.07a
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    • pp.750_751
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    • 2009
  • This paper deals with the PM performance evaluations in a pole changing memory motor (PCMM) using a coupled transient 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 dynamic characteristics evaluation relative to magnetizing direction and the pole number of machine on redemagnetization condition in a pole changing memory motor

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Characteristics Analysis of Pole Changing Memory Motor According to Arrangement of magnet (영구자석 배열에 따른 극변환 메모리 모터의 특성 분석)

  • Kim, Young-Hyun;Seo, Jun;Lee, Jung-Ho
    • Proceedings of the KIEE Conference
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    • 2015.07a
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    • pp.892-893
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    • 2015
  • This paper deals with a characteristic that varies the number of magnetic pole in permanent magnet (PM) motor in order to reduce energy consumption. The pole changing memory motor (PCMM) can change the number of magnetic poles and produce two types of torque. When the motor operates with eight poles, it produces a magnetic torque at low rotational speeds. When the motor changes to four poles, it produces both magnetic torque and reluctance torque at high speeds. The paper explain the principle and basic characteristics of the motor by using a finite element method magnetic-field analysis, which consists of a PM magnetized by a pulse d-axis current of the armature winding. The results of our experiment show that the proposed motor reduces core loss by 10% and 55% under no-load and load conditions, and doubles the speed range of the motor.

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Characteristics Analysis of V Shape Pole Changing Memory Motor using Finite Element Method (유한요소법을 이용한 V형상 극변환 메모리 모터의 특성 분석)

  • Kim, Young-Hyun;Kim, Su-Yong;Kim, Jung-Woo;Lee, Jung-Ho
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.64 no.6
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    • pp.872-877
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    • 2015
  • The Permanent Magnet (PM) machine used at speed control using field-weakening control method. But the field-weakening current, which reduces the field flux for high speeds, causes significant copper and core losses. Therefore, this paper deals with the PM performance evaluations in a pole changing memory motor (PCMM). The PCMM can change the number of magnetic poles and produce two types of torque. When the motor operates with eight poles, it produces a magnetic torque at low rotational speeds. When the motor changes to four poles, it produces both magnetic torque and reluctance torque at high speeds. The paper explain the principle and basic characteristics of the motor by using a finite element method magnetic-field analysis, which consists of a PM magnetized by a pulse d-axis current of the armature winding. The results of our experiment show that the proposed motor reduces core loss by 10% and 55% under no-load and load conditions, and doubles the speed range of the motor.

Conceptual Design and Characteristic Analysis of a Superconducting Motor using Iron Cores in the Field (계자 철심형 초전도 전동기 개념 설계 및 특성 해석)

  • Lee, S.H.;Kwon, S.O.;Hong, J.P.;Kwon, Y.K.
    • Progress in Superconductivity and Cryogenics
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    • v.10 no.3
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    • pp.14-18
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    • 2008
  • This paper deals with the conceptual design and characteristic analysis of core type superconducting motor using iron cores in the field. As the objective function of conceptual design, the flux quantity per pole is selected. In order to reduce the quantity of superconductors, the variations of flux quantity per pole by changing the design variables and area are investigated. Finally, the quantity of superconductors between air-cored and core type superconducting motor is compared under the same motor capacity. In addition, the dimensions and volumes of motors are compared.

A study on the improvement of construction error in PM stepping motor with claw pole (Claw pole PM stepping motor의 조립 오차를 개선시키기 위한 연구)

  • Ham, Sang-Hwan;Lee, Sung-Gu;Go, Sung-Chul;Kim, Won-Ho;Lee, Hyung-Woo;Lee, Ju
    • Proceedings of the KIEE Conference
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    • 2007.07a
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    • pp.1005-1006
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    • 2007
  • This paper analyzed the characteristics of the claw pole permanent magnet(PM) stepping motor by using 3D Finite element method(FEM). In this motor, magnetization is occurred along the z-axis, therefore it is necessary to apply 3D FEM for analysis of the claw pole motor. A phase difference of the two stacks's detent torque is 180 degrees. When the center of a permanent magnet is identical with the middle of a pole, small detent torque is produced in order to cancel each of detent torques. However, there are construction errors which are a discrepancy between one and the other phase section in the manufacturing process, thus the detent torque is increased. Moreover, it is confirmed that the proportion of the detent torque is considerably arisen according to the error. Analysis of the construction error is studied by changing the error $0^{\circ}$ to $3^{\circ}$.

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