Browse > Article

4병렬 인버터 구동을 통한 회전형 자기부상 시스템 6자유도 제어기법 연구  

Im, Jong-Seok (한국교통대 철도융합기술연구소)
Publication Information
KIPE Magazine / v.26, no.3, 2021 , pp. 53-59 More about this Journal
Keywords
Citations & Related Records
연도 인용수 순위
  • Reference
1 P. Ribani and N. Urbano, "Study on figure-eight-shaped coil electrodynamic suspension magnetic levitation systems without cross-connection," IEEE Trans. Magn., Vol. 36, pp. 358-365, 2000.   DOI
2 T. Arakawa, M. Takemoto, S. Ogasawara, K. Inoue, et al., "Examination of an interior permanent magnet type axial gap motor for the hybrid electric vehide," IEEE Trans. Magn., Vol. 47, pp. 3602-3605, 2011.   DOI
3 H. I. Lee, S. Y. Yoo, and M. D. Noh, "Toroidally-wound self-bearing BLDC motor with lorentz force," IEEE Trans. Magn., Vol. 46, pp. 2148-2151, 2010.   DOI
4 W. Ko and C. Ham, "A novel approach to analyze the transient dynamics of an electrodynamics suspension maglev," IEEE Trans. Magn., Vol. 43, pp. 2603-2605, 2007.   DOI
5 Y. K. Kim, I. G. Jang, Y. Kim, K. S. Kim et al., "Structural optimization of a novel 6-DOF pose sensor system for enhancing noise robustness at a long distance," IEEE Trans. Ind. Electron, Vol. 61, pp. 5622-5631, 2014.   DOI
6 Y. K. Kim, K. S. Kim, S. Kim, "A portable and remote 6-DOF pose sensor system with a long measurement range based on 1-D laser sensors," IEEE Trans. Ind. Electron., Vol. 62, pp. 5722-5729, 2015.   DOI
7 Q. Pan, F. Huang, J. Chen, L. G. He et al., "High-speed low-friction piezoelectric motors based on centrifugal force," IEEE Trans. Ind. Electron., Vol. 64, pp. 2158-2167, 2017.   DOI
8 K. W. Lee and S. I. Kim, "dynamic performance improvement of a current offset error compensator in current vector-controlled SPMSM drives," IEEE Trans. Ind. Electron., Vol. 66, pp. 6727-6736, 2019.   DOI
9 C. C. Wang, Y. D. Yao, K. Y. Liang, C. C. Huang et al., "Axial vibration study of a mobile fan motor," IEEE Trans. Magn., Vol. 46, pp. 1397-1400, 2010.   DOI
10 S. H. Won, J. Choi, and J. Lee , "Axial-gap type permanent magnet motor modeling for transient analysis," IEEE Trans. Magn., Vol. 44, pp. 4085-4088, 2008.   DOI
11 L. Chen , J. Hu, Y. Zhu , S. Du et al., "A 6-DOF measurement solution for permanent magnet synchronous planar motors based on motion continuity principle," IEEE Trans. Instrum. Meas., Vol. 65, pp. 643-655, 2016.   DOI
12 H. W. Cho, J. S. Yu, S. M. Jang, C. H. Kim et al., "Equivalent magnetic circuit based levitation force computation of controlled permanent magnet levitation system," IEEE Trans. Magn., Vol. 48, pp. 4038-4041, 2012.   DOI
13 J. S. Lim and H. W. Lee, "Movement control method of magnetic levitation system using eccentricity of non-contact position sensor," MDPI Applied Sciences, pp. 2076-3417, 2021.
14 Z. Teng and J. Xiao, "SLllface-based detection and 6-DoF pose estimation of 3-D objects in cluttered scenes," IEEE Trans. Robot., Vol. 32, pp. 1347-1361, 2016.   DOI
15 J. H. Jeong, C. W. Ha , J. Lim, and J. Y. Choi, "Analysis and control of the electromagnetic coupling effect of the levitation and guidance systems for a semi-high-speed MAGLEV using a magnetic equivalent circuit," IEEE Trans. Magn., Vol. 52, pp. 1-4, 2015.
16 J. Lim, J. H. Jeong, C. H. Kim, C. W. Ha et al., "Analysis and experimental evaluation of normal force of linear induction motor for maglev vehicle," IEEE Trans. Magn., Vol. 53, pp. 1-4, 2017.   DOI
17 L. Sun, K. Zhao, and B. Kou, "An electromagnetic launcher with magnetic levitation realized based on vector control," IEEE Trans. Magn., Vol. 45, pp. 467-470, 2009.   DOI
18 S. H. Hwang, J. M. Kim, D. J. Bang, J. W. Kim et al., "Control of independent multi-phase transverse flux linear synchronous motor based on magnetic levitation," 2014 IEEE Applied Power Electronics Conference and Exposition - APEC 2014, pp. 2488-2491, 2014.
19 J. Cao, Y Zhu , W. Yin, and W. Xu, "Electromagnetic forces acting on the planar armature of a core-type synchronous permanent-magnet planar motor," IEEE Trans. Magn., Vol. 45, pp. 3145-3150, 2009.   DOI
20 S. Kobayashi, M. Ooshima, and M. N. Uddin, "A radial position control method of bearingless motor based on d-q-axis current control. IEEE Trans. Ind. Appl., Vol. 49, pp. 1827-1835, 2013.   DOI
21 Y. Park, "Design and implementation of an electromagnetic levitation system for active magnetic bearing wheels," IET Control. Theory Appl, Vol. 8, pp. 139-148, 2014.   DOI