• DocumentCode
    3030059
  • Title

    Simulation of a Mechanical Thrombectomy Device Based in the Use of Self-Expandable Stents for the Blood Clots Extraction

  • Author

    Romero, G. ; Moreno, I. ; Martinez, M.L. ; Pearce, G.

  • Author_Institution
    ETSI Eng., Univ. Politec. de Madrid, Madrid, Spain
  • fYear
    2011
  • fDate
    16-18 Nov. 2011
  • Firstpage
    138
  • Lastpage
    143
  • Abstract
    Recently, we have presented some studies concerning the analysis, design and optimization of one experimental device developed in the UK - GPTAD - which has been designed to remove blood clots without the need to make contact with the clot itself, thereby potentially reducing the risk of problems such as downstream embolisation. Based on the idea of a modification of the previous device, in this work, we present a model based in the use of stents like the Solitaire TM FR, which is in contact with the clot itself. In the case of such devices, the stent is self-expandable and the extraction of the blood clot is faciliatated by the stent, which must be inside the clot. Such stents are generally inserted in position by using the guide wire inserted into the catheter. This type of modeling could potentially be useful in showing how the blood clot is moved by the various different forces involved. The modelling has been undertaken by analyzing the resistances, compliances and inertances effects. We model an artery and blood clot for range of forces for the guide wire. In each case we determine the interaction between blood clot, stent and artery.
  • Keywords
    biomechanics; blood vessels; catheters; patient treatment; physiological models; UK-GPTAD; artery model; blood clot extraction; blood clot model; blood clot removal; catheter; compliance effects; guide wire; inertance effects; mechanical thrombectomy device simulation; resistance effects; self expandable stents; thrombectomy device analysis; thrombectomy device design; thrombectomy device optimization; Arteries; Coagulation; Force; Friction; Mathematical model; Springs; Biomedical engineering; Simulation techniques; Stent; Thrombectomy Device;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Computer Modeling and Simulation (EMS), 2011 Fifth UKSim European Symposium on
  • Conference_Location
    Madrid
  • Print_ISBN
    978-1-4673-0060-5
  • Type

    conf

  • DOI
    10.1109/EMS.2011.71
  • Filename
    6131203