• DocumentCode
    1842069
  • Title

    Morphological Approach for the Functional Improvement of an Artificial Myocardial Assist Device using Shape Memory Alloy Fibres

  • Author

    Shiraishi, Y. ; Yambe, T. ; Saijo, Y. ; Sato, F. ; Tanaka, A. ; Yoshizawa, M. ; Ogawa, D. ; Wada, Y. ; Itoh, S. ; Sakata, R. ; Park, Y. ; Uematsu, M. ; Umezu, M. ; Fujimoto, T. ; Masumoto, N. ; Liu, H. ; Baba, A. ; Konno, S. ; Nitta, S. ; Imachi, K. ; Tab

  • Author_Institution
    Tohoku Univ., Sendai
  • fYear
    2007
  • fDate
    22-26 Aug. 2007
  • Firstpage
    3974
  • Lastpage
    3977
  • Abstract
    The authors have been developing a mechano-electric artificial myocardial assist system (artificial myocardium) which is capable of supporting natural contractile functions from the outside of the ventricle without blood contacting surface. In this study, a nano-tech covalent type shape memory alloy fibre (Biometal, Toki Corp, Japan) was employed and the parallel-link structured myocardial assist device was developed. And basic characteristics of the system were examined in a mechanical circulatory system as well as in animal experiments using goats. The contractile functions were evaluated with the mock circulatory system that simulated systemic circulation with a silicone left ventricular model and an aortic afterload. Hemodynamic performance was also examined in goats. Prior to the measurement, the artificial myocardial assist device was installed into the goat´s thoracic cavity and attached onto the ventricular wall. As a result, the system could be installed successfully without severe complications related to the heating, and the aortic flow rate was increased by 15% and the systolic left ventricular pressure was elevated by 7% under the cardiac output condition of 3L/min in a goat. And those values were elevated by the improvement of the design which was capable of the natural morphological myocardial tissue streamlines. Therefore it was indicated that the effective assistance might be achieved by the contraction by the newly-designed artificial myocardial assist system using Biometal. Moreover it was suggested that the assistance gain might be obtained by the optimised configuration design along with the natural anatomical myocardial stream line.
  • Keywords
    alloys; artificial organs; biomedical materials; cardiovascular system; fibres; haemodynamics; muscle; nanostructured materials; orthotics; shape memory effects; Biometal; aortic flow rate; artificial myocardium; contractile functions; goat animal experiments; hemodynamic performance; mechanical circulatory system; mechano-electric artificial myocardial assist device; nanotech covalent type fibre; shape memory alloy fibres; silicone left ventricular model; systolic left ventricular pressure; thoracic cavity; Animal structures; Blood; Circulatory system; Heating; Hemodynamics; Myocardium; Nanoscale devices; Optical fiber devices; Shape memory alloys; Surface morphology; Alloys; Animals; Blood Flow Velocity; Goats; Heart-Assist Devices; Hemodynamics; Humans; Models, Cardiovascular; Myocardial Contraction; Myocardium;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Engineering in Medicine and Biology Society, 2007. EMBS 2007. 29th Annual International Conference of the IEEE
  • Conference_Location
    Lyon
  • ISSN
    1557-170X
  • Print_ISBN
    978-1-4244-0787-3
  • Type

    conf

  • DOI
    10.1109/IEMBS.2007.4353204
  • Filename
    4353204