A compact highly efficient and low hemolytic centrifugal blood pump with a magnetically levitated impeller

被引:41
作者
Asama, J
Shinshi, T
Hoshi, H
Takatani, S
Shimokohbe, A
机构
[1] Tokyo Inst Technol, Precis & Intelligence Lab, Midori Ku, Yokohama, Kanagawa 2268503, Japan
[2] Tokyo Inst Technol, Interdisciplinary Grad Sch Sci & Engn, Midori Ku, Yokohama, Kanagawa 2268503, Japan
[3] Tokyo Med & Dent Univ, Inst Biomat & Bioengn, Tokyo, Japan
关键词
centrifugal blood pump; ventricular assist device; magnetic bearing; hemolytic characteristics;
D O I
10.1111/j.1525-1594.2006.00202.x
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A magnetically levitated (maglev) centrifugal blood pump (CBP), intended for use as a ventricular assist device, needs to be highly durable and reliable for long-term use without any mechanical failure. Furthermore, maglev CBPs should be small enough to be implanted into patients of various size and weight. We have developed a compact maglev CBP employing a two-degree-of-freedom controlled magnetic bearing, with a magnetically suspended impeller directly driven by an internal brushless direct current (DC) motor. The magnetic bearing actively controls the radial motion of the impeller and passively supports axial and angular motions using a permanent magnet embedded in the impeller. The overall dimensions of the maglev CBP are 65 mm in diameter and 40 mm in height. The total power consumption and pump efficiency for pumping 6 L/min against a head pressure of 105 mm Hg were 6.5 W and 21%, respectively. To evaluate the characteristics of the maglev CBP when subjected to a disturbance, excitation of the base, simulating the movement of the patient in various directions, and the sudden interception of the outlet tube connected with the pump in a mock circulatory loop, simulating an unexpected kink and emergent clamp during a heart surgery, were tested by monitoring the five-degree-of-freedom motion of the impeller. Furthermore, the hemolytic characteristics of the maglev CBP were compared with those of the Medtronic Biomedicus BPX-80, which demonstrated the superiority of the maglev CBP.
引用
收藏
页码:160 / 167
页数:8
相关论文
共 18 条
[1]  
Allaire P, 1998, ARTIF ORGANS, V22, P475
[2]   A new design for a compact centrifugal blood pump with a magnetically levitated rotor [J].
Asama, J ;
Shinshi, T ;
Hoshi, H ;
Takatani, S ;
Shimokohbe, A .
ASAIO JOURNAL, 2004, 50 (06) :550-556
[3]   HeartMate III: Pump design for a centrifugal LVAD with a magnetically levitated rotor [J].
Bourque, K ;
Gernes, DB ;
Loree, HM ;
Richardson, JS ;
Poirier, VL ;
Barletta, N ;
Fleischli, A ;
Foiera, G ;
Gempp, TM ;
Schoeb, R ;
Litwak, KN ;
Akimoto, T ;
Watach, MJ ;
Litwak, P .
ASAIO JOURNAL, 2001, 47 (04) :401-405
[4]   Experimental determination of dynamic characteristics of the VentrAssist implantable rotary blood pump [J].
Chung, MKH ;
Zhang, N ;
Tansley, GD ;
Qian, Y .
ARTIFICIAL ORGANS, 2004, 28 (12) :1089-1094
[5]   DESIGN OF PERMANENT MULTIPOLE MAGNETS WITH ORIENTED RARE-EARTH COBALT MATERIAL [J].
HALBACH, K .
NUCLEAR INSTRUMENTS & METHODS, 1980, 169 (01) :1-10
[6]   Magnetically suspended centrifugal blood pump with a radial magnetic driver [J].
Hoshi, H ;
Katakoa, K ;
Ohuchi, K ;
Asama, J ;
Shinshi, T ;
Shimokohbe, A ;
Takatani, S .
ASAIO JOURNAL, 2005, 51 (01) :60-64
[7]  
JANSSON P, 2000, P EUR PM2000 C SOFT, P9
[8]   Magnetically suspended centrifugal blood pump with a self bearing motor [J].
Masuzawa, T ;
Onuma, H ;
Kim, SJ ;
Okada, Y .
ASAIO JOURNAL, 2002, 48 (04) :437-442
[9]   Magnetically suspended rotary blood pump with radial type combined motor-bearing [J].
Masuzawa, T ;
Kita, T ;
Matsuda, K ;
Okada, Y .
ARTIFICIAL ORGANS, 2000, 24 (06) :468-474
[10]  
Merkel T., 2004, P 9 INT S MAGN BEAR