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PMID: 37425072 Published · ppublish English Journal Article

Determining 3D Distributions of Pulsatile Blood Flow Using Orthogonal Simultaneous Biplane High-Speed Angiography (SB-HSA) with 1000 fps CdTe Photon Counting Detectors for 3D X-ray Particle Image Velocimetry (3D-XPIV) compared to Results Using Computational Fluid Dynamics (CFD).

Proceedings of SPIE--the International Society for Optical Engineering ·Vol. 12468 ·2023-02-00

Simon Wu X, Shields A, Vanderbilt E, Setlur Nagesh SV, Ionita C, Bednarek DR, Rudin S

Abstract

3D hemodynamic distributions are useful for the diagnosis and treatment of aneurysms. Detailed blood-flow patterns and derived velocity maps can be obtained using 1000 fps High Speed Angiography (HSA). The novel orthogonal Simultaneous Biplane High-Speed Angiography (SB-HSA) system enables flow information to be quantified in multiple planes, and with additional components of flow at depth, accurate 3D flow distributions are available. Computational Fluid Dynamics (CFD) is the current standard for derivation of volumetric flow distributions, but obtaining solution convergence is computationally expensive and time intensive. More importantly, matching in-vivo boundary conditions is non-trivial. Therefore, an experimentally derived 3D flow distribution method could offer realistic results with less computation time. Using SB-HSA image sequences, 3D X-Ray Particle Image Velocimetry (3D-XPIV) was explored as a new method for assessing 3D flow. 3D-XPIV was demonstrated using an in-vitro setup, where a patient-specific internal carotid artery aneurysm model was attached to a flow loop, and an automated injection of iodinated microspheres was used as a flow tracer. Two 1000 fps photon-counting detectors were placed orthogonally with the aneurysm model in the FOV of both planes. Frame-synchronization of the two detectors made correlation of single-particle velocity components at a given timepoint possible. With frame-rates of 1000 fps, small particle displacements between frames resolved realistic time varying flow, where accurate velocity distributions depended on near-instantaneous velocities. 3D-XPIV velocity distributions were compared to CFD velocity distributions, where the simulation boundary conditions matched the in-vitro setup. Results showed similar velocity distributions between CFD and 3D-XPIV.

Keywords
High-speed angiography (HSA) biplane photon-counting detector (PCD) pipeline embolization device stent
作者与单位
共 7 位作者,点击展开单位 / ORCID
Simon Wu X
Canon Stroke and Vascular Research Center, University at Buffalo (SUNY), Buffalo N.Y.
Shields A
Canon Stroke and Vascular Research Center, University at Buffalo (SUNY), Buffalo N.Y.
Vanderbilt E
Canon Stroke and Vascular Research Center, University at Buffalo (SUNY), Buffalo N.Y.
Setlur Nagesh S V
Canon Stroke and Vascular Research Center, University at Buffalo (SUNY), Buffalo N.Y.
Ionita C
Canon Stroke and Vascular Research Center, University at Buffalo (SUNY), Buffalo N.Y.
Bednarek D R
Canon Stroke and Vascular Research Center, University at Buffalo (SUNY), Buffalo N.Y.
Rudin S
Canon Stroke and Vascular Research Center, University at Buffalo (SUNY), Buffalo N.Y.
Article Info
Journal
Proceedings of SPIE--the International Society for Optical Engineering
Abbr.
Proc SPIE Int Soc Opt Eng
ISSN
0277-786X
Published
2023-02-00
电子出版
2023-00-10
Language
English
Country/Region
United States
NLM ID
101524122
基金资助
NIBIB NIH HHS · R01 EB030092 · United States
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