2020
DOI: 10.3390/bioengineering7030064
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Computational Modeling of the Liver Arterial Blood Flow for Microsphere Therapy: Effect of Boundary Conditions

Abstract: Transarterial embolization is a minimally invasive treatment for advanced liver cancer using microspheres loaded with a chemotherapeutic drug or radioactive yttrium-90 (90Y) that are injected into the hepatic arterial tree through a catheter. For personalized treatment, the microsphere distribution in the liver should be optimized through the injection volume and location. Computational fluid dynamics (CFD) simulations of the blood flow in the hepatic artery can help estimate this distribution if caref… Show more

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Cited by 14 publications
(10 citation statements)
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“…More details on the methods and assumptions of the computational model preparation and CFD simulations are provided in Ref. [ 21 , 22 ].
Fig.
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Section: Main Textmentioning
confidence: 99%
“…More details on the methods and assumptions of the computational model preparation and CFD simulations are provided in Ref. [ 21 , 22 ].
Fig.
…”
Section: Main Textmentioning
confidence: 99%
“…Most of the studies use a non-Newtonian fluid to determine the apparent viscosity of blood by using a modified Quemada model [ 22 , 39 ]. However, some studies use a Newtonian fluid with a constant viscosity of 0.004 Pa·s [ 18 , 21 , 24 , 25 , 27 ] or 0.00309 Pa·s [ 40 ] (the asymptotic value of the modified Quemada model). At the arterial level where these simulations are carried out, blood exhibits a Newtonian behavior under normal conditions [ 41 ].…”
Section: Modeling Approaches To Study Rementioning
confidence: 99%
“…Several forces have been considered, although not all of them are always used: drag force, pressure-gradient force, gravitational force, and virtual mass force (Table S1). Another approach that has been taken regarding microspheres is that they distribute as the blood flow does [ 19 , 21 , 24 , 25 , 27 ].…”
Section: Modeling Approaches To Study Rementioning
confidence: 99%
“…Accordingly, computational fluid dynamics (CFD) has been extensively used in the investigation of hemodynamics [ 15 ]. Additionally, CFD can lead to non-invasive procedures for diagnosing different diseases, such as atherosclerosis before they proceed to severe instances [ 16 , 17 ]. Taebi [ 18 ] presented recent deep-learning approaches integrated with CFD for computational hemodynamics.…”
Section: Introductionmentioning
confidence: 99%