Magnetically suspended rotary blood pump with radial type combined motor-bearing

被引:14
作者
Masuzawa, T [1 ]
Kita, T [1 ]
Matsuda, K [1 ]
Okada, Y [1 ]
机构
[1] Ibaraki Univ, Sch Engn, Dept Mech Engn, Hitachi, Ibaraki 3168511, Japan
关键词
rotary blood pump; centrifugal pump; magnetic suspension; combined motor-bearing;
D O I
10.1046/j.1525-1594.2000.06577.x
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A magnetically suspended centrifugal blood pump is being developed with a combined motor-bearing for long-term ventricular assist systems. The combined motor-bearing actively suspends a rotor in a radial direction to deal with radial force unbalance in the pump and rotates the rotor by using the electric magnetic field. Therefore, the pump has no mechanical parts such as bearings of the motor and has a long lifetime. The developed pump consists of a thin rotor with a semi open-type 6 vane impeller and a stator to suspend and rotate the rotor. The rotor has 4-pole permanent magnets on the circumferential surface. The outer diameter and the thickness of the rotor are 60 mm and 8 mm, respectively. Axial movement and tilt of the rotor are restricted by passive stability based on the thin rotor structure. Radial movements of the rotor, such as levitation in radial direction and rotation, are controlled actively by using electric magnets of the stator. The electric magnet coils to produce levitation and rotation forces are constructed on the periphery stator. The p +/- 2-pole algorithm and the synchronous motor mechanism are adopted to levitate and rotate the rotor. The radial gap between the rotor and the stator is 1 mm. A closed-loop circuit filled with water was connected to the developed pump to examine the basic performance of the pump and the magnetic suspension system. Maximum rotational speed, flow rate, and head were 2,800 rpm, 11 L/min, and 270 mm Hg, respectively. The rotor with the impeller could be suspended completely during the entire pumping process. We conclude the pump with the combined motor-bearing has sufficient performance for the blood pump.
引用
收藏
页码:468 / 474
页数:7
相关论文
共 8 条
[1]  
Allaire P, 1998, ARTIF ORGANS, V22, P475
[2]   Development of design methods for a centrifugal blood pump with a fluid dynamic approach: Results in hemolysis tests [J].
Masuzawa, T ;
Tsukiya, T ;
Endo, S ;
Tatsumi, E ;
Taenaka, Y ;
Takano, H ;
Yamane, T ;
Nishida, M ;
Asztalos, B ;
Miyazoe, Y ;
Ito, K ;
Sawairi, T ;
Konishi, Y .
ARTIFICIAL ORGANS, 1999, 23 (08) :757-761
[3]  
Nojiri C, 1997, ASAIO J, V43, pM548
[4]   Long-term in vivo left ventricular assist device study for 284 days with Gyro PI pump [J].
Ohtsuka, G ;
Nakata, K ;
Yoshikawa, M ;
Takano, T ;
Glueck, J ;
Sankai, Y ;
Takami, Y ;
Mueller, J ;
Sueoka, A ;
Letsou, G ;
Schima, H ;
Schmallegger, H ;
Wolner, E ;
Koyanagi, H ;
Fujisawa, A ;
Baldwin, JC ;
Nosé, Y .
ARTIFICIAL ORGANS, 1999, 23 (06) :504-507
[5]   ANALYSIS AND COMPARISON OF PM SYNCHRONOUS MOTOR AND INDUCTION-MOTOR TYPE MAGNETIC BEARINGS [J].
OKADA, Y ;
DEJIMA, K ;
OHISHI, T .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 1995, 31 (05) :1047-1053
[6]   Intrathoracic and intraabdominal wall implantation of a centrifugal blood pump for circulatory assist [J].
Wakisaka, Y ;
Taenaka, Y ;
Chikanari, K ;
Okuzono, Y ;
Nishimura, T ;
Endo, S ;
Nakatani, T ;
Takano, H .
ARTIFICIAL ORGANS, 1998, 22 (06) :493-497
[7]   A sealless centrifugal blood pump with passive magnetic and hydrodynamic bearings [J].
Wampler, R ;
Lancisi, D ;
Indravudh, V ;
Gauthier, R ;
Fine, R .
ARTIFICIAL ORGANS, 1999, 23 (08) :780-784
[8]   New mechanism to reduce the size of the monopivot magnetic suspension blood pump: Direct drive mechanism [J].
Yamane, T ;
Nishida, M ;
Kijima, T ;
Maekawa, J .
ARTIFICIAL ORGANS, 1997, 21 (07) :620-624