Optimization of a hybrid magnetic bearing for a magnetically levitated blood pump via 3-D FEA

被引:36
作者
Cheng, Shanbao [1 ]
Olles, Mark W. [1 ]
Burger, Aaron F. [1 ]
Day, Steven W. [1 ]
机构
[1] Rochester Inst Technol, Rochester, NY 14623 USA
关键词
Hybrid magnetic bearing; 3-D finite element analysis; Axial flow blood pump; Magnetic bearing test rig; DESIGN; SYSTEM; ROTOR;
D O I
10.1016/j.mechatronics.2011.07.010
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In order to improve the performance of a magnetically levitated (maglev) axial flow blood pump, three-dimensional (3-D) finite element analysis (FEA) was used to optimize the design of a hybrid magnetic bearing (HMB). Radial, axial, and current stiffness of multiple design variations of the HMB were calculated using a 3-D FEA package and verified by experimental results. As compared with the original design, the optimized HMB had twice the axial stiffness with the resulting increase of negative radial stiffness partially compensated for by increased current stiffness. Accordingly, the performance of the maglev axial flow blood pump with the optimized HMBs was improved: the maximum pump speed was increased from 6000 rpm to 9000 rpm (50%). The radial, axial and current stiffness of the HMB was found to be linear at nominal operational position from both 3-D FEA and empirical measurements. Stiffness values determined by FEA and empirical measurements agreed well with one another. The magnetic flux density distribution and flux loop of the HMB were also visualized via 3-D FEA which confirms the designers' initial assumption about the function of this HMB. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1163 / 1169
页数:7
相关论文
共 21 条
[11]   The specific load capacity of radial-flux radial magnetic bearings [J].
Khoo, W. K. S. ;
Garvey, S. D. ;
Kalita, K. .
IEEE TRANSACTIONS ON MAGNETICS, 2007, 43 (07) :3293-3300
[12]   Design and control of active magnetic bearing system with Lorentz force-type axial actuator [J].
Kim, HY ;
Lee, CW .
MECHATRONICS, 2006, 16 (01) :13-20
[13]   A miniature milling spindle with Active Magnetic Bearings [J].
Kimman, M. H. ;
Langen, H. H. ;
Schmidt, R. H. Munnig .
MECHATRONICS, 2010, 20 (02) :224-235
[14]   The history of continuous-flow blood pumps [J].
Olsen, DB .
ARTIFICIAL ORGANS, 2000, 24 (06) :401-404
[15]  
Pilat A., 2004, International Journal of Applied Mathematics and Computer Science, V14, P497
[16]  
Schweitzer G., 1994, ACTIVE MAGNETIC BEAR
[17]  
Takeshi M, 2002, P 8 INT S MAGN BEAR, P151
[18]   Analysis of hybrid magnetic bearing with a permanent magnet in the rotor by FEM [J].
Xu, YL ;
Dun, YQ ;
Wang, XH ;
Kong, Y .
IEEE TRANSACTIONS ON MAGNETICS, 2006, 42 (04) :1363-1366
[19]   Servo system modeling and reduction of mechatronic system through finite element analysis for control design [J].
Yan, T. H. ;
Chen, X. D. ;
Lin, R. M. .
MECHATRONICS, 2008, 18 (09) :466-474
[20]   Design and Implementation of a Magnetically Levitated Single-Axis Controlled Axial Blood Pump [J].
Yang, Sheng-Ming ;
Huang, Ming-Shi .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2009, 56 (06) :2213-2219