Vol. 16 No. 3 (2012)
ANGIONEUROLOGY & NEUROSURGERY

Hydrodynamic calculations for embolization strategy of cerebral arteriovenous malformations with fistulous component

V. Panarin
Academician E.N. Meshalkin Novosibirsk Research Institute of Circulation Pathology
Bio
K. Orlov
Academician E.N. Meshalkin Novosibirsk Research Institute of Circulation Pathology
Bio
A. Krivoshapkin
Academician E.N. Meshalkin Novosibirsk Research Institute of Circulation Pathology
Bio
A. Chupakhin
Lavrentiev Institute of Hydrodynamics SB RAS
Bio
A. Cherevko
Lavrentiev Institute of Hydrodynamics SB RAS
Bio
A. Khe
Lavrentiev Institute of Hydrodynamics SB RAS
Bio
N. Telegina
Lavrentiev Institute of Hydrodynamics SB RAS
Bio
V. Baranov
Scientific Research Institute of Physiology SB RAMS
Bio

Published 2012-09-25

Keywords

  • EMBOLIZATION,
  • ARTERIOVENOUS MALFORMATION,
  • FISTULA,
  • ONYX,
  • HEMORRHAGE

How to Cite

Panarin, V., Orlov, K., Krivoshapkin, A., Chupakhin, A., Cherevko, A., Khe, A., Telegina, N., & Baranov, V. (2012). Hydrodynamic calculations for embolization strategy of cerebral arteriovenous malformations with fistulous component. Patologiya Krovoobrashcheniya I Kardiokhirurgiya, 16(3), 39–43. https://doi.org/10.21688/1681-3472-2012-3-39-43

Abstract

Various scenarios of cerebral arteriovenous malformation (AVM) embolization were considered by using a locally developed mathematic model of vascular malformation as a set of different diameter tubes. It was demonstrated that the least pressure drop at the AVM inlet could be achieved by embolizing the widest fistula first and then large and small compartments of AVM. A comparison of model calculations with the results of AVM embolization in 15 patients was performed.

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