Blood flow dynamics in patient-specific cerebral aneurysm models: the relationship between wall shear stress and aneurysm area index

Med Eng Phys. 2008 Apr;30(3):329-40. doi: 10.1016/j.medengphy.2007.04.011. Epub 2007 Jun 6.

Abstract

Hemodynamics plays an important role in the progression and rupture of cerebral aneurysms. The temporal and spatial variations in wall shear stress (WSS) within the aneurysmal sac are hypothesized to be correlated with the growth and rupture of the aneurysm. The current work describes the blood flow dynamics in 34 patient-specific models of saccular aneurysms located in the region of the anterior and posterior circulation of the circle of Willis. The models were obtained from three-dimensional rotational angiography image data and blood flow dynamics was studied under a physiologically representative waveform of inflow. The three-dimensional continuity and momentum equations for unsteady laminar flow were solved with commercial software using non-structured fine grid sizes. The vortex structure, the wall pressure, and the WSS showed large variations, depending on the morphology of the artery, size of the aneurysm, and form. A correlation existed between the mean WSS on the aneurysmal sac for lateral unruptured and ruptured aneurysms with an aneurysm surface index, which is defined as the ratio between the aneurysm area and the artery area at model inlet, respectively.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Aneurysm, Ruptured / diagnostic imaging
  • Aneurysm, Ruptured / physiopathology
  • Cerebral Angiography
  • Cerebrovascular Circulation
  • Circle of Willis / diagnostic imaging
  • Circle of Willis / physiopathology
  • Computer Simulation
  • Elasticity
  • Humans
  • Image Processing, Computer-Assisted
  • Imaging, Three-Dimensional / methods
  • Intracranial Aneurysm / blood*
  • Intracranial Aneurysm / diagnostic imaging
  • Intracranial Aneurysm / physiopathology*
  • Models, Cardiovascular*
  • Numerical Analysis, Computer-Assisted*
  • Rheology*
  • Stress, Mechanical