• DocumentCode
    2709279
  • Title

    A 3D brain deformation model experiencing comparable surgical loads

  • Author

    Miga, Michael I. ; Paulsen, Keith D. ; Kennedy, Francis E. ; Hoopes, P. Jack ; Hartov, Alex ; Roberts, David W.

  • Author_Institution
    Thayer Sch. of Eng., Dartmouth Coll., Hanover, NH, USA
  • Volume
    2
  • fYear
    1997
  • fDate
    30 Oct-2 Nov 1997
  • Firstpage
    773
  • Abstract
    During the past 10 years, the finite element method (FEM) has been successfully employed to model the neuroanatomy under varying load conditions. Loading conditions used in previous work can be predominantly separated into two categories. The first category concerns large accelerations of the head followed by a sharp deceleration or impact. The second category considers maladies of the brain such as edema and hydrocephalus. The authors´ research is focused on creating a third category which involves the application of surgical loads. In neurosurgical procedures, various instruments are used which purposely retract/resect or inadvertently move tissue. In addition, other sources of brain shift include reduction in brain buoyancy due to cerebrospinal fluid (CSF) drainage and administered drugs such as mannitol which causes brain volume to decrease by transporting fluid away from the tissue via the brain vasculature. The concern is that intraoperative loads such as these will move designated subsurface operative areas and lead to surgical error. The ultimate goal of the authors´ research is to model surgical loads, predict subsequent deformation and update the surgeon´s navigation fields in real time. However, the scope of this paper is limited to the development of an initial 3D model of brain deformation
  • Keywords
    biomechanics; brain models; surgery; 10 y; 3D brain deformation model; administered drugs; brain buoyancy reduction; brain shift; brain vasculature; cerebrospinal fluid drainage; comparable surgical loads; edema; fluid transportation away from tissue; hydrocephalus; inadvertent tissue movement; large head accelerations; mannitol; neuroanatomy modeling; neurosurgical procedures; sharp deceleration; surgical error; Acceleration; Brain modeling; Deformable models; Drugs; Finite element methods; Instruments; Load modeling; Neurosurgery; Predictive models; Surgery;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Engineering in Medicine and Biology Society, 1997. Proceedings of the 19th Annual International Conference of the IEEE
  • Conference_Location
    Chicago, IL
  • ISSN
    1094-687X
  • Print_ISBN
    0-7803-4262-3
  • Type

    conf

  • DOI
    10.1109/IEMBS.1997.757753
  • Filename
    757753