• DocumentCode
    3036417
  • Title

    Three dimensional photoelastic stress analysis on patient-tailored anatomical model of cerebral artery

  • Author

    Ikeda, Seiichi ; Arai, Fumihito ; Fukuda, Toshio ; Irie, Keiko ; Negoro, Makoto

  • Author_Institution
    Dept. of Micro-Nano Syst. Eng., Nagoya Inst. of Technol., Japan
  • fYear
    2004
  • fDate
    31 Oct.-3 Nov. 2004
  • Firstpage
    145
  • Lastpage
    150
  • Abstract
    In this paper, we propose an in vitro patient-tailored biological model of human cerebral artery, a novel hardware platform for simulating endovascular intervention, in purpose of diagnosis, presurgical simulation and medical training. Proposed biological model precisely reproduces 3-dimensional configuration of vasculature lumen within vasculature-like thin uniform membrane made of silicon elastomer that provides material property closest to arterial tissue (as to elasticity and surface friction). With this patient-tailored precise vasculature model, then we propose a novel technique to visualize and to analyze 3-dimensional stress distribution over 3-dimensional membranous vasculature structure, which arise from surgical treatments or pulsatile blood streaming, using photoelastic stress analysis. Although photoelastic analysis is generally effective only for 2-dimensional problems, we adapted it to our 3-dimensional problem by making use of vasculature-like thin membranous configuration of proposed biological model. Stress distribution is dearly observed at its fringe as rainbow-colored photoelastic stress pattern. Consequently, proposed patient-tailored biological model should be useful for a wide range of applications, such as hemodynamic study and evaluation of medical devices, as well as surgical simulations.
  • Keywords
    biomembranes; brain models; haemodynamics; patient diagnosis; photoelasticity; 3-dimensional configuration; 3-dimensional stress distribution; anatomical model; arterial tissue; diagnosis; elasticity; endovascular intervention; hardware platform; hemodynamic study; human cerebral artery; in vitro patient-tailored biological model; medical devices; medical training; photoelastic stress analysis; presurgical simulation; pulsatile blood streaming; silicon elastomer; surface friction; surgical simulations; surgical treatments; vasculature lumen; Arteries; Biological system modeling; Hardware; Humans; In vitro; Medical diagnostic imaging; Medical simulation; Photoelasticity; Stress; Surgery;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Micro-Nanomechatronics and Human Science, 2004 and The Fourth Symposium Micro-Nanomechatronics for Information-Based Society, 2004. Proceedings of the 2004 International Symposium on
  • Print_ISBN
    0-7803-8607-8
  • Type

    conf

  • DOI
    10.1109/MHS.2004.1421292
  • Filename
    1421292