A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary

A novel efficient interface-tracking method is developed to gain an insight into the interface in a multiphase or multifluid system, called the modified particle binary level set (MPBLS) method, in which the binary level set function is defined to distinguish the different phases or fluids and furth...

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Main Authors: Li, Hua., Ye, Ting., Lam, K. Y.
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2013
Subjects:
Online Access:https://hdl.handle.net/10356/102266
http://hdl.handle.net/10220/16859
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1022662020-03-07T13:22:16Z A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary Li, Hua. Ye, Ting. Lam, K. Y. School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering A novel efficient interface-tracking method is developed to gain an insight into the interface in a multiphase or multifluid system, called the modified particle binary level set (MPBLS) method, in which the binary level set function is defined to distinguish the different phases or fluids and further modified by Lagrangian particles scattered along the interface for achieving higher accuracy. The validation of the MPBLS method is carried out first by simulating the free motion of a red blood cell (RBC) in the rotating, shear and Poiseuille flows, respectively. Subsequently, further validations are performed by comparing with the experimental and numerical results published previously. As one of important applications, the MPBLS method is employed to investigate the deformation behaviors of RBCs with different shapes in a capillary. The simulations show that the healthy RBC gradually changes the geometric shape from a biconcave to a steady parachute shape. It is thus guaranteed that the RBC successfully traverses through the smaller capillaries compared with undeformed RBC. However, the unhealthy RBC with the circular or elliptical shape has different deformation behaviors, in which the steady parachute shape is much less concave at the rear and more convex in the front. 2013-10-25T01:09:30Z 2019-12-06T20:52:24Z 2013-10-25T01:09:30Z 2019-12-06T20:52:24Z 2011 2011 Journal Article Li, H., Ye, T., & Lam, K. Y. (2011). A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary. International journal for numerical methods in fluids, 69(6), 1031-1044. 0271-2091 https://hdl.handle.net/10356/102266 http://hdl.handle.net/10220/16859 10.1002/fld.2624 en International journal for numerical methods in fluids
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Li, Hua.
Ye, Ting.
Lam, K. Y.
A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary
description A novel efficient interface-tracking method is developed to gain an insight into the interface in a multiphase or multifluid system, called the modified particle binary level set (MPBLS) method, in which the binary level set function is defined to distinguish the different phases or fluids and further modified by Lagrangian particles scattered along the interface for achieving higher accuracy. The validation of the MPBLS method is carried out first by simulating the free motion of a red blood cell (RBC) in the rotating, shear and Poiseuille flows, respectively. Subsequently, further validations are performed by comparing with the experimental and numerical results published previously. As one of important applications, the MPBLS method is employed to investigate the deformation behaviors of RBCs with different shapes in a capillary. The simulations show that the healthy RBC gradually changes the geometric shape from a biconcave to a steady parachute shape. It is thus guaranteed that the RBC successfully traverses through the smaller capillaries compared with undeformed RBC. However, the unhealthy RBC with the circular or elliptical shape has different deformation behaviors, in which the steady parachute shape is much less concave at the rear and more convex in the front.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Li, Hua.
Ye, Ting.
Lam, K. Y.
format Article
author Li, Hua.
Ye, Ting.
Lam, K. Y.
author_sort Li, Hua.
title A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary
title_short A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary
title_full A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary
title_fullStr A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary
title_full_unstemmed A novel interface-tracking method based on Lagrangian particles for deformation analysis of a red blood cell in a capillary
title_sort novel interface-tracking method based on lagrangian particles for deformation analysis of a red blood cell in a capillary
publishDate 2013
url https://hdl.handle.net/10356/102266
http://hdl.handle.net/10220/16859
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