A sealless centrifugal blood pump with passive magnetic and hydrodynamic bearings

被引:23
|
作者
Wampler, R [1 ]
Lancisi, D [1 ]
Indravudh, V [1 ]
Gauthier, R [1 ]
Fine, R [1 ]
机构
[1] Kriton Med Inc, Citrus Hts, CA 95610 USA
关键词
magnetically suspended centrifugal pump; ventricular assist device; axial flux gap motor; radial magnetic bearing; hydrodynamic bearings;
D O I
10.1046/j.1525-1594.1999.06422.x
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
We are developing a permanently implantable ventricular assist system based on a sealless centrifugal blood pump. The impeller of the pump is supported by a passive radial magnetic bearing acting in synergy with hydrodynamic bearings. Torque is transmitted to the impeller by electromagnetic coupling via an integrated axial flux gap motor. Computer modeling has been used extensively to guide the hydraulic and electromagnetic design of the pump. As part of the development effort, a prototype system was built, which consisted of a radial magnetic bearing, an axial air gap motor, and a pivot bearing to constrain the axial motion. The following testing has been completed to validate the design. First, hydraulic tests have demonstrated sufficient hydraulic performance. Second, preliminary in vitro evaluation of hemolysis was low compared to that of a BioPump control. Third, a 6 h in vivo experiment was successfully completed.
引用
下载
收藏
页码:780 / 784
页数:5
相关论文
共 50 条
  • [31] Numerical simulation and experimental research on passive hydrodynamic bearing in a blood pump
    Qing Han
    Xiaodong Ruan
    Wenyu Chen
    Xin Fu
    Chinese Journal of Mechanical Engineering, 2013, 26 : 967 - 973
  • [32] Numerical Simulation and Experimental Research on Passive Hydrodynamic Bearing in a Blood Pump
    HAN Qing
    RUAN Xiaodong
    CHEN Wenyu
    FU Xin
    Chinese Journal of Mechanical Engineering, 2013, 26 (05) : 967 - 973
  • [33] Centrifugal Blood Pump for Temporary Ventricular Assist Devices With Low Priming and Ceramic Bearings
    Leme, Juliana
    da Silva, Cibele
    Fonseca, Jeison
    da Silva, Bruno Utiyama
    Uebelhart, Beatriz
    Biscegli, Jose F.
    Andrade, Aron
    ARTIFICIAL ORGANS, 2013, 37 (11) : 942 - 945
  • [34] Numerical Calculation for Whirling Motion of a Centrifugal Blood Pump with Conical Spiral Groove Bearings
    Shigemaru, Daichi
    Tsukamoto, Hiroshi
    10TH ASIAN INTERNATIONAL CONFERENCE ON FLUID MACHINERY, 2010, 1225 : 185 - +
  • [35] Magnetic Drive System for a New Centrifugal Rotary Blood Pump
    Hilton, Andrew
    Tansley, Geoff
    ARTIFICIAL ORGANS, 2008, 32 (10) : 772 - 777
  • [36] Magnetically suspended centrifugal blood pump with a radial magnetic driver
    Hoshi, H
    Katakoa, K
    Ohuchi, K
    Asama, J
    Shinshi, T
    Shimokohbe, A
    Takatani, S
    ASAIO JOURNAL, 2005, 51 (01) : 60 - 64
  • [37] Inverse hydrodynamic design of centrifugal pump impeller
    Li, WG
    PROCEEDINGS OF THE 4TH INTERNATIONAL CONFERENCE ON NONLINEAR MECHANICS, 2002, : 908 - 912
  • [38] Optimization Study on a Novel High-Speed Oil-Free Centrifugal Water Pump with Hydrodynamic Bearings
    Xue, Rong
    Cai, Yijie
    Fang, Xufeng
    Chen, Liang
    Zhang, Xingqun
    Hou, Yu
    APPLIED SCIENCES-BASEL, 2019, 9 (15):
  • [39] Computational fluid dynamics performance prediction for the hydrodynamic bearings of the VentrAssist rotary blood pump
    Bertram, CD
    Qian, Y
    Reizes, JA
    ARTIFICIAL ORGANS, 2001, 25 (05) : 348 - 357
  • [40] Hydrodynamic Bearing Structural Design of Blood Pump Based on Axial Passive Suspension Stability Analysis of Magnetic-Hydrodynamic Hybrid Suspension System
    Shen, Peng
    Wang, Yiwen
    Chen, Yun
    Fu, Pengqiang
    Zhou, Lijie
    Liu, Lijia
    MACHINES, 2021, 9 (11)