Flow visualization study to improve hemocompatibility of a centrifugal blood pump

被引:21
作者
Nishida, M
Asztalos, B
Yamane, T
Masuzawa, T
Tsukiya, T
Endo, S
Taenaka, Y
Miyazoe, Y
Ito, K
Konishi, Y
机构
[1] Mech Engn Lab, Biomimet Div, Tsukuba, Ibaraki 3058564, Japan
[2] Ibaraki Univ, Ibaraki, Osaka, Japan
[3] Natl Cardiovasc Ctr, Osaka, Japan
[4] Nikkiso Co Ltd, Tokyo, Japan
关键词
flow visualization; volute flow; impeller/casing gap; outlet position; outlet flow; shear velocity;
D O I
10.1046/j.1525-1594.1999.06400.x
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A correlation study was conducted among quantitative flow visualization analysis, computational fluid dynamic analysis, and hemolysis tests regarding the flow in a centrifugal blood pump to prevent hemolysis. Particular attention was paid to the effect of the impeller/casing gap widths on the flow in the volute and in the outlet. Flow vector maps were obtained for 250% scaled-up models with various geometries, using an argon ion laser light sheet, a high speed video camera, and particle tracking velocimetry, In terms of the results, in the small radial gap model, high shear occurred near the inside wall of the outlet and stagnation near the outside wall of the outlet whereas the standard model maintained smooth flow and low shear. The small radial gap model showed a lower head and greater hemolysis than the standard model. This head decrease could be partly restored by relocating the outlet position; however, the hemolysis level hardly decreased. From these results, it was found that the small radial gap itself is important. It was also confirmed by detailed flow visualization and simple laminar shear analysis near the wall that the small radial gap caused a wider high shear layer (110-120 mu m) than the standard model (-80 mu m). In the small radial gap model, the high shear layer in the outlet (-50 mu m) is much narrower than that in the volute. Flow visualization together with the aid of computational fluid dynamic analysis would be useful to eliminate the causes of hemolysis.
引用
收藏
页码:697 / 703
页数:7
相关论文
共 13 条
[1]  
ASZTALOS B, UNPUB ARTIF ORGANS
[2]  
Ikeda T, 1996, ARTIF ORGANS, V20, P132
[3]  
JIKUYA T, 1992, ARTIF ORGANS, V16, P599
[4]  
KOBAYASHI T, 1991, ASME FED, V128, P9
[5]   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
[6]   Computational fluid dynamic analyses to establish design process of centrifugal blood pumps [J].
Miyazoe, Y ;
Sawairi, T ;
Ito, K ;
Konishi, Y ;
Yamane, T ;
Nishida, M ;
Masuzawa, T ;
Takiura, K ;
Taenaka, Y .
ARTIFICIAL ORGANS, 1998, 22 (05) :381-385
[7]   Computational fluid dynamics analysis to establish the design process of a centrifugal blood pump: Second report [J].
Miyazoe, Y ;
Sawairi, T ;
Ito, K ;
Konishi, Y ;
Yamane, T ;
Nishida, M ;
Asztalos, B ;
Masuzawa, T ;
Tsukiya, T ;
Endo, S ;
Taenaka, Y .
ARTIFICIAL ORGANS, 1999, 23 (08) :762-768
[8]   Quantitative visualization of flow through a centrifugal blood pump: Effect of washout holes [J].
Nishida, M ;
Yamane, T ;
Orita, T ;
Asztalos, B ;
Clarke, H .
ARTIFICIAL ORGANS, 1997, 21 (07) :720-729
[9]   CARDIOPULMONARY BYPASS WITH NIKKISO AND BIOMEDICUS CENTRIFUGAL PUMPS [J].
ORIME, Y ;
TAKATANI, S ;
SASAKI, T ;
AIZAWA, T ;
OHARA, Y ;
NAITO, K ;
GLUECK, J ;
NOON, GP ;
NOSE, Y ;
DEBAKEY, ME .
ARTIFICIAL ORGANS, 1994, 18 (01) :11-16
[10]   MINIMIZATION OF HEMOLYSIS IN CENTRIFUGAL BLOOD PUMPS - INFLUENCE OF DIFFERENT GEOMETRIES [J].
SCHIMA, H ;
MULLER, MR ;
PAPANTONIS, D ;
SCHLUSCHE, C ;
HUBER, L ;
SCHMIDT, C ;
TRUBEL, W ;
THOMA, H ;
LOSERT, U ;
WOLNER, E .
INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 1993, 16 (07) :521-529