Evaluation of floating impeller phenomena in a Gyro centrifugal pump

被引:1
|
作者
Nishimura, I
Ichikawa, S
Mikami, M
Ishitoya, H
Motomura, T
Kawamura, A
Linneweber, J
Glueck, J
Shinohara, T
Nosé, Y
Nishimura, I
机构
[1] Hokkaido Univ, Grad Sch Engn, Div Syst & Informat Engn, Dept Biophys Engn,Kita Ku, Sapporo, Hokkaido 0608628, Japan
[2] Baylor Coll Med, Dept Surg, Houston, TX 77030 USA
关键词
D O I
10.1097/01.MAT.0000093962.97611.01
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The Gyro centrifugal pump, developed as a totally implantable artificial heart, was designed with a free impeller in which the rotational shaft (male bearing) of the impeller was completely separated from the female bearing. For this type of pump, it is very important to keep the proper magnet balance (impeller-magnet and actuator-magnet balance) to prevent thrombus formation or bearing wear. When the magnet balance is not proper, the impeller is jerked down into the bottom bearing. On the other hand, if magnet balance is proper, the impeller is lifted off the bottom of the pump housing within a certain range of pumping conditions. In this study, this floating phenomenon was investigated in detail. The floating phenomenon was proven by observation of the impeller behavior by means of a transparent acrylic pump. The impeller floating phenomenon was mapped on a pump performance curve. The impeller floating phenomenon is affected by the magnet-magnet coupling distance and the rotational speed of the impeller. To keep the proper magnet balance and to maintain the impeller floating phenomenon at the driving conditions of right and left pumps, the magnet-magnet coupling distance was altered by a spacer that was installed between the pump and actuator. It became clear that the same pump could handle different conditions (right and left ventricular assist) by changing the thickness of the spacer. When magnet balance is proper, the floating impeller phenomenon occurs automatically in response to the impeller revolution. This is called "the dynamic revolutions per minute suspension."
引用
收藏
页码:744 / 747
页数:4
相关论文
共 50 条
  • [41] FLOW OF CAVITATION BUBBLES IN A CENTRIFUGAL PUMP IMPELLER
    MINEMURA, K
    KIKUYAMA, K
    MURAKAMI, M
    UCHIYAMA, T
    JSME INTERNATIONAL JOURNAL SERIES II-FLUIDS ENGINEERING HEAT TRANSFER POWER COMBUSTION THERMOPHYSICAL PROPERTIES, 1988, 31 (01): : 30 - 38
  • [43] Low flowrate effects in a centrifugal pump impeller
    Rose, MG
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2004, 218 (A6) : 417 - 427
  • [44] Evolution of the gyro centrifugal pump using a flexible conduit
    Nonaka, K.
    Yoshikawa, M.
    Linneweber, J.
    Takano, T.
    Maeda, T.
    Kawahito, S.
    Schulte-Eistrup, S.
    Glueck, J.
    Schima, H.
    Nosé, Y.
    ASAIO Journal, 2000, 46 (02)
  • [45] UNSTEADY FLOW PHENOMENA IN ROTATING CENTRIFUGAL IMPELLER PASSAGES
    LENNEMANN, E
    HOWARD, JHG
    JOURNAL OF ENGINEERING FOR POWER, 1970, 92 (01): : 65 - +
  • [46] UNSTEADY FLOW PHENOMENA IN ROTATING CENTRIFUGAL IMPELLER PASSAGES
    LENNEMAN.E
    HOWARD, JHG
    MECHANICAL ENGINEERING, 1969, 91 (07) : 63 - &
  • [47] INTERNAL HYDRAULIC LOSS IN A SEALLESS CENTRIFUGAL GYRO PUMP
    MAKINOUCHI, K
    OHARA, Y
    SAKUMA, I
    DAMM, G
    MIZUGUCHI, K
    JIKUYA, T
    TAKATANI, S
    NOON, GP
    NOSE, Y
    ARTIFICIAL ORGANS, 1994, 18 (01) : 25 - 31
  • [48] Modeling Polymeric Centrifugal-Pump Impeller Blades
    Pukhliy, V.A.
    Miroshnichenko, S.T.
    Sokolov, V.V.
    Lecture Notes in Mechanical Engineering, 2020, : 287 - 298
  • [49] Numerical Performance Evaluation of Design Modifications on a Centrifugal Pump Impeller Running in Reverse Mode
    Kassanos, Ioannis
    Chrysovergis, Marios
    Anagnostopoulos, John
    Papantonis, Dimitris
    Charalampopoulos, George
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON NUMERICAL ANALYSIS AND APPLIED MATHEMATICS 2015 (ICNAAM-2015), 2016, 1738
  • [50] Effects of Impeller Trimming Methods on Performances of Centrifugal Pump
    Qu, Xiao
    Wang, Li
    JOURNAL OF ENERGY ENGINEERING, 2016, 142 (04)