MATHEMATICAL MODEL FOR THE RUPTURE OF CEREBRAL SACCULAR ANEURYSMS THROUGH THREE-DIMENSIONAL STRESS DISTRIBUTION IN THE ANEURYSM WALL

Author:

CHAUDHRY HANS R.12,LOTT DAWN A.34,PRESTIGIACOMO CHARLES J.15,FINDLEY THOMAS W.12

Affiliation:

1. Department of Biomedical Engineering, New Jersey Institute of Technology, Newark, NJ, USA

2. War-Related Illness and Injury Study Center, VA Medical Center, East Orange, NJ, USA

3. Departments of Biotechnology and Mathematics, Applied Mathematics and Theoretical Physics Graduate Department, Applied Mathematics Research Center, Delaware State University, Dover, DE, USA

4. Center for Applied Mathematics and Statistics, New Jersey Institute of Technology, Newark, NJ, USA

5. Department of Neurological Surgery, New Jersey Medical School, University of Medicine and Dentistry of New Jersey, Newark, NJ, USA

Abstract

A mathematical model for the rupture of cerebral saccular aneurysms is developed through the analysis of three-dimensional stress distribution in the aneurysm wall. We assume in this paper that a saccular aneurysm resembles a thin spherical shell (a spherical membrane), and then develop a strain-energy function valid for finite strain to analyze three-dimensional stress distribution in the aneurysm wall. We find that rupture occurs when the ratio of the wall thickness to the radius of the aneurysm is 6.1 × 10-3. We also conclude from our analysis that rupture can occur when the ratio of thickness to radius of the parent aneurysm equals the ratio of thickness to radius of the daughter aneurysm. These findings may be helpful to the neurosurgeon for predicting the rupture potential in patients presenting with unruptured aneurysms.

Publisher

World Scientific Pub Co Pte Lt

Subject

Biomedical Engineering

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