The numerical analysis of non-newtonian blood flow in a mechanical heart valve

Background: The non-physiological structure of mechanical heart valves (MHVs) affects the blood flow field, especially the complex microstructure at the hinge. Numerous studies suggest that the blood flow field in the aortic area with an MHV can be considered Newtonian. However, the Newtonian assump...

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Main Authors: Chen, Aolin, Basri, Adi Azriff, Ismail, Norzian, Ahmad, Kamarul Arifin
Format: Article
Published: Multidisciplinary Digital Publishing Institute 2022
Online Access:http://psasir.upm.edu.my/id/eprint/110242/
https://www.mdpi.com/2227-9717/11/1/37
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Institution: Universiti Putra Malaysia
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spelling my.upm.eprints.1102422024-09-03T07:25:47Z http://psasir.upm.edu.my/id/eprint/110242/ The numerical analysis of non-newtonian blood flow in a mechanical heart valve Chen, Aolin Basri, Adi Azriff Ismail, Norzian Ahmad, Kamarul Arifin Background: The non-physiological structure of mechanical heart valves (MHVs) affects the blood flow field, especially the complex microstructure at the hinge. Numerous studies suggest that the blood flow field in the aortic area with an MHV can be considered Newtonian. However, the Newtonian assumption is occasionally unreasonable, where blood viscosity changes with shear rate, exhibiting non-Newtonian shear-thinning characteristics. Methods: In this research, a comprehensive study of the non-Newtonian effects on the hemodynamic behavior of MHVs was performed. The impact of the Newtonian hypothesis was investigated on the internal hemodynamics of MHVs. Several non-Newtonian and Newtonian models were used to analyze the chamber flow and blood viscosity. MHVs were modeled and placed in simplified arteries. After the unstructured mesh was generated, a simulation was performed in OpenFOAM to analyze its hemodynamic parameters. Results: In the study of the non-Newtonian viscosity model, the Casson model differs significantly from the Newtonian model, resulting in a 70.34% higher wall shear stress. In the modified Cross and Carreau models, the non-Newtonian behavior can significantly simulate blood in the MHV at different stages during initial and intermediate deceleration. The narrowing of the hinge region in particular, has a significant impact on evaluating blood rheology. The low flow rate and high wall shear force at the hinge can cause blood cell accumulation and injury time, resulting in hemolytic thrombosis. Conclusion: The results exhibit that the Newtonian hypothesis underestimates the hemodynamics of MHVs, whose complex structure leads to increased recirculation, stagnation, and eddy current structure, and a reasonable choice of blood viscosity model may improve the result accuracy. Modfied Cross and Carreau viscosity models effectively exhibit the shear-thinning behavior in MHV blood simulations. Multidisciplinary Digital Publishing Institute 2022 Article PeerReviewed Chen, Aolin and Basri, Adi Azriff and Ismail, Norzian and Ahmad, Kamarul Arifin (2022) The numerical analysis of non-newtonian blood flow in a mechanical heart valve. Processes, 11 (1). pp. 1-19. ISSN 2227-9717 https://www.mdpi.com/2227-9717/11/1/37 10.3390/pr11010037
institution Universiti Putra Malaysia
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continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
description Background: The non-physiological structure of mechanical heart valves (MHVs) affects the blood flow field, especially the complex microstructure at the hinge. Numerous studies suggest that the blood flow field in the aortic area with an MHV can be considered Newtonian. However, the Newtonian assumption is occasionally unreasonable, where blood viscosity changes with shear rate, exhibiting non-Newtonian shear-thinning characteristics. Methods: In this research, a comprehensive study of the non-Newtonian effects on the hemodynamic behavior of MHVs was performed. The impact of the Newtonian hypothesis was investigated on the internal hemodynamics of MHVs. Several non-Newtonian and Newtonian models were used to analyze the chamber flow and blood viscosity. MHVs were modeled and placed in simplified arteries. After the unstructured mesh was generated, a simulation was performed in OpenFOAM to analyze its hemodynamic parameters. Results: In the study of the non-Newtonian viscosity model, the Casson model differs significantly from the Newtonian model, resulting in a 70.34% higher wall shear stress. In the modified Cross and Carreau models, the non-Newtonian behavior can significantly simulate blood in the MHV at different stages during initial and intermediate deceleration. The narrowing of the hinge region in particular, has a significant impact on evaluating blood rheology. The low flow rate and high wall shear force at the hinge can cause blood cell accumulation and injury time, resulting in hemolytic thrombosis. Conclusion: The results exhibit that the Newtonian hypothesis underestimates the hemodynamics of MHVs, whose complex structure leads to increased recirculation, stagnation, and eddy current structure, and a reasonable choice of blood viscosity model may improve the result accuracy. Modfied Cross and Carreau viscosity models effectively exhibit the shear-thinning behavior in MHV blood simulations.
format Article
author Chen, Aolin
Basri, Adi Azriff
Ismail, Norzian
Ahmad, Kamarul Arifin
spellingShingle Chen, Aolin
Basri, Adi Azriff
Ismail, Norzian
Ahmad, Kamarul Arifin
The numerical analysis of non-newtonian blood flow in a mechanical heart valve
author_facet Chen, Aolin
Basri, Adi Azriff
Ismail, Norzian
Ahmad, Kamarul Arifin
author_sort Chen, Aolin
title The numerical analysis of non-newtonian blood flow in a mechanical heart valve
title_short The numerical analysis of non-newtonian blood flow in a mechanical heart valve
title_full The numerical analysis of non-newtonian blood flow in a mechanical heart valve
title_fullStr The numerical analysis of non-newtonian blood flow in a mechanical heart valve
title_full_unstemmed The numerical analysis of non-newtonian blood flow in a mechanical heart valve
title_sort numerical analysis of non-newtonian blood flow in a mechanical heart valve
publisher Multidisciplinary Digital Publishing Institute
publishDate 2022
url http://psasir.upm.edu.my/id/eprint/110242/
https://www.mdpi.com/2227-9717/11/1/37
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