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Finite strain elastodynamics of intracranial saccular aneurysms

  • A. D. Shah
    ,
  • J. D. Humphrey(corresponding author)
*Corresponding author for this work
  • University of Maryland, Baltimore
    ,
  • Texas A&M University
Scholary Output:
Contribution to journal
Article
Peer-review

Abstract

Various investigators suggest that intracranial saccular aneurysms are dynamically unstable, that they resonate in response to pulsatile blood flow. This hypothesis is based on linearized analyses or experiments on rubber `models', however, and there is a need for a more critical examination. Toward this end, we (a) derive a new nonlinear equation of motion for a pulsating spherical aneurysm that is surrounded by cerebral spinal fluid and whose behavior is described by a Fung-type pseudostrain-energy function that fits data on human lesions, and (b) use methods of nonlinear dynamics to examine the stability of such lesions against perturbations to both in vivo and in vitro conditions. The numerical results suggest that this sub-class of lesions is dynamically stable. Moreover, with the exception of transients associated with initial perturbations, inertial effects appear to be insignificant for fundamental forcing frequencies less than 10 Hz and hence for typical physiologic and laboratory conditions. We submit, therefore, that further study of the mechanics of saccular aneurysms should be focused on quasi-static stress analyses that investigate the roles of lesion geometry and material properties, including growth and remodeling.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 593-599 (7 pages)

Journal (Volume, Issue Number)

Journal of Biomechanics (Volume 32, Issue 6)

Publication milestones

  • Published - 06/1999

Publication status

Published - 06/1999

ISSN

0021-9290

Publication IDs

  • Scopus: 0032928110
  • PubMed: 10332623

Publication metrics

Metrics

Fractional count
1
Fractional count
0.50
Fractional count
1
Fractional count
0.50
Fractional count
1
Fractional count
1
SciVal
citations
73
SciVal
FWCI
1.53
SciVal
Author count
2
SciVal
Paper percentile
90
SciVal
Top percentile
10
Scopus
citations

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Captures
76
Citation count
80

Funding Details

This research was supported by grants from the American Heart Association — MD Affiliate (MDSG-1395) and the NIH (HL-54957). Insightful discussions with Professors C. von Kerczek, H. Haslach, and T. Dimas are gratefully acknowledged, as is the help of Mr. Nehal Mohamed with the digitization of the physiologic data.
FundersFunding numbers
NIH
-
NHLBI
R01HL054957
AHA
MDSG-1395