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Two-phase flows (Euler-Euler methods and Euler-Lagrange methods)

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

Abstract

In recent years, the application of numerical modeling in fluid mechanics has expanded significantly in various engineering fields, extending its reach to the simulation of fluid dynamics within living organisms. The use of computer models enables virtual experiments to be carried out, providing insights into the description of phenomena and flow conditions within the human body. Precise visualization of velocity and pressure fields derived from flow simulations holds great promise for identifying areas susceptible to pathological changes, such as plaque accumulation leading to cardiovascular disease. This study attempts to explore the potential of computational fluid dynamics to mimic multiphase blood flow within blood vessels and microchannels. Through numerical analyses of blood flow within the right coronary artery and microchannels with hyperbolic constrictions of varying sizes, blood is considered as a nonhomogeneous mixture consisting primarily erythrocytes and plasma. A numerical model of coronary blood flow has been developed using the Euler-Euler two-phase approach, which accurately represents the interactions between plasma and erythrocytes. Of particular note is the pronounced interaction between these constituents in narrower vessels, where the Fåhræus-Lindqvist effect is manifested, indicating the tendency of erythrocytes to migrate toward the vessel core. The dynamics of particle flow is influenced by the granular temperature, which represents the energy associated with the random motion of the particles. To improve accuracy, the granular temperature equation was adapted using user-defined functions. At the microscale, the numerical model simulates the flow of dextran, as a surrogate for plasma and erythrocytes, within microchannels characterized by hyperbolic constriction and the formation of a cell-free layer. Using both Euler-Euler and Euler-Lagrange hybrid multiphase modeling approaches, the simulation results were validated against in vitro experimental data. The simulations were performed using the commercial software ANSYS Fluent (ANSYS Inc., USA).

Original languageEnglish
Title of host publicationRecent Advances in Hemodynamics and Blood Mimetics
PublisherElsevier
Pages55-82
Number of pages28
ISBN (Electronic)9780443240669
ISBN (Print)9780443240676
DOIs
Publication statusPublished - 1 Jan 2025

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Blood flow
  • CFD
  • Euler-Euler
  • Euler-Lagrange
  • Granular flow
  • Multiphase models
  • Numerical model

ASJC Scopus subject areas

  • General Biochemistry,Genetics and Molecular Biology

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