Estimation of changes in dynamic hydraulic force in a magnetically suspended centrifugal blood pump with transient computational fluid dynamics analysis

被引:12
作者
Masuzawa, Toru [1 ]
Ohta, Akiko [1 ]
Tanaka, Nobuatu [1 ]
Qian, Yi [2 ]
Tsukiya, Tomonori [3 ]
机构
[1] Ibaraki Univ, Dept Mech Engn, Hitachi, Ibaraki 3168511, Japan
[2] Waseda Univ, Inst Biomed Engn, Tokyo, Japan
[3] Natl Cardiovasc Ctr, Res Inst, Dept Artificial Organs, Osaka, Japan
关键词
Computational fluid dynamics (CFD) analysis; Transient analysis; Magnetically suspended pump; Rotary blood pump; Centrifugal pump; VENTRICULAR ASSIST DEVICE; FLOW VISUALIZATION; HEMOLYSIS TESTS; DESIGN METHODS; BEARING; HEMOCOMPATIBILITY; OPTIMIZATION; PERFORMANCE; PREDICTION; ESTABLISH;
D O I
10.1007/s10047-009-0459-2
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The effect of the hydraulic force oil magnetically levitated (maglev) pumps should be studied carefully to improve the suspension performance and the reliability of the pumps. A maglev centrifugal pump, developed at Ibaraki University, was modeled with 926376 hexahedral elements for computational fluid dynamics (CFD) analyses. The pump has a fully open six-vane impeller with a diameter of 72.5 mm. A self-bearing motor suspends the impeller in the radial direction. The maximum pressure head and flow rate were 250 mmHg and 141/min, respectively. First, a steady-state analysis was performed using commercial code STAR-CD to confirm the model's suitability by comparing the results with the real pump performance. Second, transient analysis was performed to estimate the hydraulic force on the levitated impeller. The impeller was rotated in steps of 1 degrees using a sliding mesh. The force around the impeller was integrated at every step. The transient analysis revealed that the direction of the radial force changed dynamically as the vane's position changed relative to the outlet port during one circulation, and the magnitude of this force was about 1N. The current maglev pump has sufficient performance to counteract this hydraulic force. Transient CFD analysis is not only useful for observing dynamic flow conditions in a centrifugal pump but is also effective for obtaining information about the levitation dynamics of a maglev pump.
引用
收藏
页码:150 / 159
页数:10
相关论文
共 30 条
[1]   Blood flow in a continuous flow ventricular assist device [J].
Allaire, PE ;
Wood, HG ;
Awad, RS ;
Olsen, DB .
ARTIFICIAL ORGANS, 1999, 23 (08) :769-773
[2]   Numerical studies of blood shear and washing in a continuous flow ventricular assist device [J].
Anderson, JB ;
Wood, HG ;
Allaire, PE ;
McDaniel, JC ;
Olsen, DB ;
Bearnson, G .
ASAIO JOURNAL, 2000, 46 (04) :486-494
[3]   COMPUTATIONAL FLOW OPTIMIZATION OF ROTARY BLOOD PUMP COMPONENTS [J].
ANTAKI, JF ;
GHATTAS, O ;
BURGREEN, GW ;
HE, BC .
ARTIFICIAL ORGANS, 1995, 19 (07) :608-615
[4]   MODEL FOR A GENERAL MECHANICAL BLOOD DAMAGE PREDICTION [J].
BLUDSZUWEIT, C .
ARTIFICIAL ORGANS, 1995, 19 (07) :583-589
[5]   Numerical investigation of the effects of the clearance gap between the inducer and impeller of an axial blood pump [J].
Chan, WK ;
Wong, YW ;
Ong, W ;
Koh, SY ;
Chong, V .
ARTIFICIAL ORGANS, 2005, 29 (03) :250-258
[6]   Design considerations of volute geometry of a centrifugal blood pump [J].
Chan, WK ;
Wong, YW ;
Hu, W .
ARTIFICIAL ORGANS, 2005, 29 (12) :937-948
[7]   Numerical analysis of the inner flow field of a biocentrifugal blood pump [J].
Chua, LP ;
Song, GL ;
Lim, TM ;
Zhou, TM .
ARTIFICIAL ORGANS, 2006, 30 (06) :467-477
[8]   Third-generation blood pumps with mechanical noncontact magnetic bearings [J].
Hoshi, H ;
Shinshi, T ;
Takatani, S .
ARTIFICIAL ORGANS, 2006, 30 (05) :324-338
[9]   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
[10]  
Masuzawa T, 2000, CLINICAL APPLICATION OF COMPUTATIONAL MECHANICS TO THE CARDIOVASCULAR SYSTEM, P246