Skip to main content
Top
Published in: Journal of Artificial Organs 2/2015

01-06-2015 | Brief Communication

Passive magnetic bearing in the 3rd generation miniature axial flow pump-the valvo pump 2

Authors: Eiji Okamoto, Yuya Ishida, Tetsuya Yano, Yoshinori Mitamura

Published in: Journal of Artificial Organs | Issue 2/2015

Login to get access

Abstract

The new miniature axial flow pump (valvo pump 2) that is installed at the base of the ascending aorta consists of a six-phase stator, an impeller in which four neodymium magnets are incorporated, and passive magnetic bearings that suspend the impeller for axial levitation. The impeller is sustained by hydrodynamic force between the blade tip of the impeller and the inner housing of the stator. The passive magnetic bearing consists of a ring neodymium magnet and a columnar neodymium magnet. The ring neodymium magnet is set in the stationary side and the columnar neodymium magnet is incorporated in the impeller shaft. Both neodymium magnets are coaxially mounted, and the anterior and posterior passive magnetic bearings suspend the impeller by repulsion force against the hydrodynamic force that acts to move the impeller in the inflow port direction. The passive magnetic bearing was evaluated by a tensile test, and the levitation force of 8.5 N and stiffness of 2.45 N/mm was obtained. Performance of the axial flow pump was evaluated by an in vitro experiment. The passive magnetic bearing showed sufficient levitation capacity to suspend the impeller in an axial direction. In conclusion, the passive magnetic bearing is promising to be one of levitation technology for the third-generation axial flow blood pump.
Literature
1.
go back to reference Kirklin JK, Naftel DC, Kormos RL, Stevenson LW, Pagani FD, Miller MA, Baldwin JT, Young JB. Fifth INTERMACS annual report: risk factor analysis from more than 6,000 mechanical circulatory support patients. J Heart Lung Transplant. 2013;32:141–56.CrossRefPubMed Kirklin JK, Naftel DC, Kormos RL, Stevenson LW, Pagani FD, Miller MA, Baldwin JT, Young JB. Fifth INTERMACS annual report: risk factor analysis from more than 6,000 mechanical circulatory support patients. J Heart Lung Transplant. 2013;32:141–56.CrossRefPubMed
2.
go back to reference Yozu R. Circulation apparatus. U.S. Patent No. 4994917, 1991. Yozu R. Circulation apparatus. U.S. Patent No. 4994917, 1991.
3.
go back to reference Mitamura Y, Yozu R, Tanaka T. The valvo-pump: axial nonplusatile blood pump. ASAIO Trans. 1991;37:M510–2.PubMed Mitamura Y, Yozu R, Tanaka T. The valvo-pump: axial nonplusatile blood pump. ASAIO Trans. 1991;37:M510–2.PubMed
4.
go back to reference Mitamura Y, Takahashi S, Amari S, Okamoto E, Murabayashi S, Ninismura I. A magnetic fluid seal for rotary blood pumps: effects of seal structure on long-term performance in liquid. J. Artif Organs. 2011;14:23–30.CrossRefPubMed Mitamura Y, Takahashi S, Amari S, Okamoto E, Murabayashi S, Ninismura I. A magnetic fluid seal for rotary blood pumps: effects of seal structure on long-term performance in liquid. J. Artif Organs. 2011;14:23–30.CrossRefPubMed
5.
go back to reference Schmid C, Tjan TD, Etz C, Schmidt C, Wenzelburger F, Wilhelm M, Rothernburger M, Drees G, Scheld HH. First clinical experience with the INCOR left ventricular assist device. J Heart Lung Transplant. 2005;24:1188–94.CrossRefPubMed Schmid C, Tjan TD, Etz C, Schmidt C, Wenzelburger F, Wilhelm M, Rothernburger M, Drees G, Scheld HH. First clinical experience with the INCOR left ventricular assist device. J Heart Lung Transplant. 2005;24:1188–94.CrossRefPubMed
6.
go back to reference Okada Y, Masuzawa T, Matsuda K, Ohmori K, Yamane T, Konishi Y, Fukahori S, Ueno S, Kim SJ. Axial type self-bearing motor for axial flow blood pump. Artif Organs. 2003;27:887–91.CrossRefPubMed Okada Y, Masuzawa T, Matsuda K, Ohmori K, Yamane T, Konishi Y, Fukahori S, Ueno S, Kim SJ. Axial type self-bearing motor for axial flow blood pump. Artif Organs. 2003;27:887–91.CrossRefPubMed
7.
go back to reference Tanaka H, Tsukiya T, Tatsumi E, Mizuno T, Hidaka T, Okubo T, Osada T, Myamoto S, Taenaka Y. Initial in vivo evaluation of the newly developed axial flow turbo pump with hydrodynamic bearings. J. Artif Organs. 2011;14:31–8.CrossRefPubMed Tanaka H, Tsukiya T, Tatsumi E, Mizuno T, Hidaka T, Okubo T, Osada T, Myamoto S, Taenaka Y. Initial in vivo evaluation of the newly developed axial flow turbo pump with hydrodynamic bearings. J. Artif Organs. 2011;14:31–8.CrossRefPubMed
8.
go back to reference Qian KX, Wang DF, Topaz S, Ru WM, Zeng P, Yuan HY, Wang H, Wang FQ, Feng ZG, Zwischenberger JB. Use of aortic valvo-pump placed in valve annulus for long-term left ventricular assist. ASAIO J. 2005;51:736–8.CrossRefPubMed Qian KX, Wang DF, Topaz S, Ru WM, Zeng P, Yuan HY, Wang H, Wang FQ, Feng ZG, Zwischenberger JB. Use of aortic valvo-pump placed in valve annulus for long-term left ventricular assist. ASAIO J. 2005;51:736–8.CrossRefPubMed
9.
go back to reference Qian KX, Yuan HY, Zeng P, Ru WM. A nobel permanent maglev rotary LVAD with passive magnetic bearings. J. Med Eng Technol. 2005;29:235–7.CrossRefPubMed Qian KX, Yuan HY, Zeng P, Ru WM. A nobel permanent maglev rotary LVAD with passive magnetic bearings. J. Med Eng Technol. 2005;29:235–7.CrossRefPubMed
10.
go back to reference Hoshi H, Shinshi T, Takatani S. Third-generation blood pump with mechanical noncontact magnetic bearings. Artif Organs. 2006;30:324–38.CrossRefPubMed Hoshi H, Shinshi T, Takatani S. Third-generation blood pump with mechanical noncontact magnetic bearings. Artif Organs. 2006;30:324–38.CrossRefPubMed
11.
go back to reference Chen HM, William AS, Walton JF. High efficiency magnetic bearing for a rotary blood pump. ASAIO J. 1998;44:728–32.CrossRef Chen HM, William AS, Walton JF. High efficiency magnetic bearing for a rotary blood pump. ASAIO J. 1998;44:728–32.CrossRef
12.
go back to reference Qian KX, Zeng P, Ru WM, Yuan HY. Novel magnetic spring and magnetic bearing. IEEE Trans Magn. 2003;39:559–61.CrossRef Qian KX, Zeng P, Ru WM, Yuan HY. Novel magnetic spring and magnetic bearing. IEEE Trans Magn. 2003;39:559–61.CrossRef
13.
go back to reference Wampler R, Lancisi D, Indravudh V, Gauthier R, Fine R. A seal less centrifugal blood pump with passive magnetic and hydrodynamic bearings. Artif Organs. 1999;23:780–4.CrossRefPubMed Wampler R, Lancisi D, Indravudh V, Gauthier R, Fine R. A seal less centrifugal blood pump with passive magnetic and hydrodynamic bearings. Artif Organs. 1999;23:780–4.CrossRefPubMed
Metadata
Title
Passive magnetic bearing in the 3rd generation miniature axial flow pump-the valvo pump 2
Authors
Eiji Okamoto
Yuya Ishida
Tetsuya Yano
Yoshinori Mitamura
Publication date
01-06-2015
Publisher
Springer Japan
Published in
Journal of Artificial Organs / Issue 2/2015
Print ISSN: 1434-7229
Electronic ISSN: 1619-0904
DOI
https://doi.org/10.1007/s10047-014-0806-9

Other articles of this Issue 2/2015

Journal of Artificial Organs 2/2015 Go to the issue