One possible treatment for cerebral aneurysms is a porous tubular structure, similar to a stent, called a flow diverter. A flow diverter can be placed across the neck of a cerebral aneurysm to induce the cessation of flow and initiate the formation of an intra-aneurysmal thrombus. This excludes the aneurysm from the parent artery and returns the flow of blood to normal. Previous flow diverting devices have been analyzed to determine optimal characteristics, such as braiding angle and wire diameter. From this information, a new optimized device was designed to achieve equivalent hemodynamic performance to the previous best device, but with better longitudinal flexibility to preserve physiological arterial configuration. The new device was tested in vitro in an elastomeric replica of the rabbit elastase induced aneurysm model and is now in the process of being tested in vivo. Particle image velocimetry was utilized to determine the velocity field in the plane of symmetry of the model under pulsatile flow conditions. Device hemodynamic performance indices such as the hydrodynamic circulation were evaluated from the velocity fields. Comparison of these indices with the previous best device and a control shows that the significant design changes of the device did not change its hemodynamic attributes (p > 0.05).
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August 2012
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Comparison of the In Vitro Hemodynamic Performance of New Flow Diverters for Bypass of Brain Aneurysms
Asher L. Trager,
Asher L. Trager
Department of Biomedical Engineering,
University of Miami
, 1251 Memorial Drive, Coral Gables, FL 33146
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Chander Sadasivan,
Chander Sadasivan
Department of Neurological Surgery,
State University of New York at Stony Brook
, 100 Nicolls Rd, Stony Brook, NY 11794
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Baruch B. Lieber
Baruch B. Lieber
Department of Neurological Surgery,
baruch.lieber@sbumed.org
State University of New York at Stony Brook
, 100 Nicolls Rd, Stony Brook, NY 11794
Search for other works by this author on:
Asher L. Trager
Department of Biomedical Engineering,
University of Miami
, 1251 Memorial Drive, Coral Gables, FL 33146
Chander Sadasivan
Department of Neurological Surgery,
State University of New York at Stony Brook
, 100 Nicolls Rd, Stony Brook, NY 11794
Baruch B. Lieber
Department of Neurological Surgery,
State University of New York at Stony Brook
, 100 Nicolls Rd, Stony Brook, NY 11794baruch.lieber@sbumed.org
J Biomech Eng. Aug 2012, 134(8): 084505 (6 pages)
Published Online: August 8, 2012
Article history
Received:
November 8, 2011
Revised:
March 21, 2012
Posted:
March 26, 2012
Published:
August 8, 2012
Online:
August 8, 2012
Citation
Trager, A. L., Sadasivan, C., and Lieber, B. B. (August 8, 2012). "Comparison of the In Vitro Hemodynamic Performance of New Flow Diverters for Bypass of Brain Aneurysms." ASME. J Biomech Eng. August 2012; 134(8): 084505. https://doi.org/10.1115/1.4006454
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