• Title/Summary/Keyword: Magnet Pole Shape Optimization

Search Result 24, Processing Time 0.027 seconds

A Study on the Inductance Variation According to the Rotor Shape in IPMSM (IPMSM의 회전자 형상에 따른 인덕턴스 변화에 대한 연구)

  • Kim, Hee-Woon;Hur, Jin
    • Proceedings of the KIEE Conference
    • /
    • 2009.04b
    • /
    • pp.274-276
    • /
    • 2009
  • This paper presents a rotor shape optimization of interior type permanent magnet (IPM) motor for cogging torque minimization and maximization of reluctance torque. In order to minimize the cogging torque, the optimal notches are put on the rotor pole face and the arc type pole face is applied. The variations of cogging torque and d-q axis inductions are analyzed by finite element method (FEM).

  • PDF

The Rotor Shape Design of IPM Type BLDC Motor for Minimization of Vibration (IPM type BLDC 전동기의 진동저감을 위한 회전자 형상설계)

  • Reu, Jin-Wook;Kang, Gyu-Hong;Hur, Jin
    • Proceedings of the KIEE Conference
    • /
    • 2009.07a
    • /
    • pp.895_896
    • /
    • 2009
  • this paper presents a rotor shape optimization of interior type permanent magnet (IPM) motor for vibration minimization. the vibration of permanent magnet motor is generated by cogging torque, radial force and commutation torque ripple which are electromagnetic source of vibration. In order to minimize the vibration, the optimal notches are put on the rotor pole face and the arc type pole face is applied. The variations of cogging torque and radial force of each model vibration frequency are computation by finite element method (FEM) and the validity of the analysis and rotor shape design is confirmed by vibration experiments.

  • PDF

Cogging Torque Reduction in Permanent-Magnet Brushless Generators for Small Wind Turbines

  • Chung, Dae-Won;You, Yong-Min
    • Journal of Magnetics
    • /
    • v.20 no.2
    • /
    • pp.176-185
    • /
    • 2015
  • We present the design optimization of the magnetic pole and slot design options that minimize the cogging torque of permanent-magnet (PM) brushless generators for small wind turbine generators. Most small wind-turbines use direct-driven PM generators which have the characteristics of low speed and high efficiency. Small wind-turbines are usually self-starting and require very simple controls. The cogging torque is an inherent characteristic of PM generators, and is mainly caused by the generator's geometry. The inherent the cogging torque can cause problems during turbine start-up and cut-in in order to start softly and to run a power generator even when there is little wind power during turbine start-up. Thus, to improve the operation of small turbines, it is important to minimize the cogging torque. To determine the effects of the cogging torque reductions, we adjust the slot opening width, slot skewing, mounting method of magnets, magnet shape, and the opening and combinations of different numbers of slots per pole. Of these different methods, we combine the methods and optimized the design variables for the most significant design options affecting the cogging torque. Finally, we apply to the target design model and compare FEA simulation and measured results to validate the design optimization.

Optimal Design of Rotor Pole of BLDC Motor Using Evolution Strategy (진화전략을 이용한 BLDC 전동기 회전자 자극의 최적설계)

  • Yi, H.K.;Bae, B.H.;Kim, K.T.;Kim, S.K.;Kwon, Y.A.
    • Proceedings of the KIEE Conference
    • /
    • 2003.10b
    • /
    • pp.113-115
    • /
    • 2003
  • This paper presents the optimal design of a brushless DC motor(BLDC) keeping the average torque and cogging torque of the initial model while minimizing the volume of magnet pole by FEM and evolution strategy. Experimental tests are performed by the finite element method(FEM), and the random based evolution strategy is applied for the shape optimization. The optimal result shows a largely reduced volume of magnet pole.

  • PDF

Optimal Rotor Shape Design of Asymmetrical Multi-Layer IPM Motors to Improve Torque Performance Considering Irreversible Demagnetization

  • Mirazimi, M.S.;Kiyoumarsi, A.;Madani, Sayed M.
    • Journal of Electrical Engineering and Technology
    • /
    • v.12 no.5
    • /
    • pp.1980-1990
    • /
    • 2017
  • A study on the multi-objective optimization of Interior Permanent-Magnet Synchronous Motors (IPMSMs) with 2, 3, 4 and 5 flux barriers per magnetic pole, based on Genetic Algorithm (GA) is presented by considering the aspect of irreversible demagnetization. Applying the 2004 Toyota Prius single-layer IPMSM as the reference machine, the asymmetrical two-, three-, four- and five-layer rotor models with the same amount of Permanent-Magnets (PMs) is presented to improve the torque characteristics, i.e., reducing the torque pulsation and increasing the average torque. A reduction of the torque pulsations is achieved by adopting different and asymmetrical flux barrier geometries in each magnetic pole of the rotor topology. The demagnetization performance in the PMs is considered as well as the motor performance; and analyzed by using finite element method (FEM) for verification of the optimal solutions.

Rotor Shape Design of an Interior PM Type BLDC Motor for Improving Mechanical Vibration and EMI Characteristics

  • Hur, Jin;Kim, Byeong-Woo
    • Journal of Electrical Engineering and Technology
    • /
    • v.5 no.3
    • /
    • pp.462-467
    • /
    • 2010
  • This paper presents the rotor shape optimization of an interior type permanent magnet (IPM) motor for a reduction of vibration and Electromagnetic Interference (EMI). The vibration and EMI in permanent magnet motors is generated by cogging torque ripple, radial force and commutation torque ripple. Consequently, in order to improve vibration and EMI, the optimal notches are put on the rotor pole with an arc shape proposed. The variation of vibration frequency due to the cogging torque and radial force of each model is computed by the finite element method (FEM). From the analysis result and experiment, we confirmed the proposed model has remarkably improved the vibration and EMI.

Optimal Design of a PMLSM with 9 Pole 10 Slot for Detent Force Reduction (9극 10슬롯 구조의 영구자석 선형 동기 전동기의 디텐트력 저감을 위한 최적설계)

  • Hwang, In-Sung;Yoon, Hee-Sung;Koh, Chang-Seop
    • The Transactions of The Korean Institute of Electrical Engineers
    • /
    • v.57 no.4
    • /
    • pp.589-595
    • /
    • 2008
  • Detent force of a permanent magnet linear motor(PMLSM) consist of cogging and drag forces, and should be minimized for high precision control purpose applications. This paper shows that the cogging force can be reduced effectively by employing 9 pole 10 slot structure. The drag force is minimized by optimizing the total length and shape of the exterior teeth of armature core simultaneously by using($1+{\lambda}$) evolution strategy coupled with response surface method. After optimization, the optimized PMLSM is proven to reduce 95% and 92.6% of the cogging and total detent forces, respectively, and give 12% and 6.4% higher Back-emf and thrust force, respectively, compared with a conventional 12 pole 9 slot structure under the same condition. Additionally, Simulation results by the proposed optimum design are verified by the experiment results.

A magnet pole shape Optimization of the Large scale BLDC Motor by using RSM (RSM을 이용한 대용량 BLDC 전동기의 영구자석의 최적화 연구)

  • Kim, Han-Deul;Shin, Pan-Seok;Park, Gwan-Soo;Kim, Dong-Sok
    • Proceedings of the KIEE Conference
    • /
    • 2006.04b
    • /
    • pp.167-169
    • /
    • 2006
  • 대용량 BLDC 모터의 진동 및 소음의 원인은 영구자석과 슬롯 개구부 형상에 의한 코깅토크와 전류 파형에 의하여 발생하게 된다. 특히 대용량 BLDC의 경우 코깅토크에 의한 진동 및 소음의 영향이 상대적으로 큰 값을 가지게 된다. 따라서 코깅토크 발생원인 중 하나인 영구자석의 형상에 RSM(Response Surface Method) 최적화 이론을 적용하여 코깅토크 저감을 연구하였다. FEM과 RSM을 결합하여 영구자석의 형상을 최적화한 결과 코깅토크의 ripple이 25%이상 감소되었다.

  • PDF

A Permanent Magnet Pole Shape Optimization for a BLDC Motor by using Response Surface Method (Response Surface Method를 이용한 소형 BLDC 전동기의 영구자석 형상 최적화 연구)

  • Woo, Sung-Hyun;Chung, Hee-Joon;Chung, Hyun-Koo;Shin, Pan-Seok
    • Proceedings of the KIEE Conference
    • /
    • 2007.10c
    • /
    • pp.129-131
    • /
    • 2007
  • BLDC 모터의 진동 및 소음의 원인인 영구자석과 슬롯 개구부 형상에 의한 코깅토크를 저감시키기 위하여, RSM(Response Surface Method)과 FEM(Finite Element Method)를 이용하여 영구자석의 형상을 최적화 하였다. 최적화 과정은 총 2단계에 걸쳐 진행되었다. 1단계에서는 영구자석의 자극간격을 구하고, 2단계에서 자석의 형상을 변화시저 최적화한 결과, 최적화 전 후의 코깅도가, 최대 0.051[N.m]에서 0.029[N.m]로 약 50% 감소하였다.

  • PDF