Literature DB >> 16683958

Computational fluid dynamics analysis of the pediatric tiny centrifugal blood pump (TinyPump).

Kazuyuki Kido1, Hideo Hoshi, Nobuo Watanabe, Hiroyuki Kataoka, Katsuhiro Ohuchi, Junichi Asama, Tadahiko Shinshi, Masaharu Yoshikawa, Setsuo Takatani.   

Abstract

We have developed a tiny rotary centrifugal blood pump for the purpose of supporting circulation of children and infants. The pump is designed to provide a flow of 0.1-4.0 L/min against a head pressure of 50-120 mm Hg. The diameter of the impeller is 30 mm with six straight vanes. The impeller is supported by a hydrodynamic bearing at its center and rotated with a radial coupled magnetic driver. The bearing that supports rotation of the impeller of the tiny centrifugal blood pump is very critical to achieve durability, and clot-free and antihemolytic performance. In this study, computational fluid dynamics (CFD) analysis was performed to quantify the secondary flow through the hydrodynamic bearing at the center of the impeller and investigated the effects of bearing clearance on shear stress to optimize hemolytic performance of the pump. Two types of bearing clearance (0.1 and 0.2 mm) were studied. The wall shear stress of the 0.1-mm bearing clearance was lower than that of 0.2-mm bearing clearance at 2 L/min and 3000 rpm. This was because the axial component of the shear rate significantly decreased due to the narrower clearance even though the circumferential component of the shear rate increased. Hemolysis tests showed that the normalized index of hemolysis was reduced to 0.0076 g/100 L when the bearing clearance was reduced to 0.1 mm. It was found that the CFD prediction supported the experimental trend. The CFD is a useful tool for optimization of the hydrodynamic bearing design of the centrifugal rotary blood pump to optimize the performance of the pump in terms of mechanical effect on blood cell elements, durability of the bearing, and antithrombogenic performance.

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Year:  2006        PMID: 16683958     DOI: 10.1111/j.1525-1594.2006.00231.x

Source DB:  PubMed          Journal:  Artif Organs        ISSN: 0160-564X            Impact factor:   3.094


  6 in total

Review 1.  The use of computational fluid dynamics in the development of ventricular assist devices.

Authors:  Katharine H Fraser; M Ertan Taskin; Bartley P Griffith; Zhongjun J Wu
Journal:  Med Eng Phys       Date:  2010-11-13       Impact factor: 2.242

2.  A quantitative comparison of mechanical blood damage parameters in rotary ventricular assist devices: shear stress, exposure time and hemolysis index.

Authors:  Katharine H Fraser; Tao Zhang; M Ertan Taskin; Bartley P Griffith; Zhongjun J Wu
Journal:  J Biomech Eng       Date:  2012-08       Impact factor: 2.097

3.  Comparison and experimental validation of fluid dynamic numerical models for a clinical ventricular assist device.

Authors:  Jiafeng Zhang; Pei Zhang; Katharine H Fraser; Bartley P Griffith; Zhongjun J Wu
Journal:  Artif Organs       Date:  2013-02-27       Impact factor: 3.094

4.  Computational modeling of the Food and Drug Administration's benchmark centrifugal blood pump.

Authors:  Bryan C Good; Keefe B Manning
Journal:  Artif Organs       Date:  2020-02-16       Impact factor: 3.094

5.  Design and Computational Evaluation of a Pediatric MagLev Rotary Blood Pump.

Authors:  Landon H Tompkins; Barry N Gellman; Gino F Morello; Steven R Prina; Thomas J Roussel; Jonathan A Kopechek; Priscilla C Petit; Mark S Slaughter; Steven C Koenig; Kurt A Dasse
Journal:  ASAIO J       Date:  2021-09-01       Impact factor: 3.826

6.  Computational Parametric Study of the Axial and Radial Clearances in a Centrifugal Rotary Blood Pump.

Authors:  Mohammad Amin Rezaienia; Gordon Paul; Eldad Avital; Martin Rothman; Theodosios Korakianitis
Journal:  ASAIO J       Date:  2018 Sep/Oct       Impact factor: 2.872

  6 in total

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