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Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating

[Image: see text] Introduction: Employing of gaseous plugs inside a vein for preventing of blood flow to the damaged or cancerous tissues has been known as a gas embolism in the medicine. In this research, a numerical investigation has been carried out on the delivery of the liquid drug DDFP, encaps...

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Autores principales: Shervani-Tabar, Mohammad T., Farzaneh, Babak, Ahrabi, Reza, Razavi, Seyed E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Tabriz University of Medical Sciences 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6209829/
https://www.ncbi.nlm.nih.gov/pubmed/30397582
http://dx.doi.org/10.15171/bi.2018.30
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author Shervani-Tabar, Mohammad T.
Farzaneh, Babak
Ahrabi, Reza
Razavi, Seyed E.
author_facet Shervani-Tabar, Mohammad T.
Farzaneh, Babak
Ahrabi, Reza
Razavi, Seyed E.
author_sort Shervani-Tabar, Mohammad T.
collection PubMed
description [Image: see text] Introduction: Employing of gaseous plugs inside a vein for preventing of blood flow to the damaged or cancerous tissues has been known as a gas embolism in the medicine. In this research, a numerical investigation has been carried out on the delivery of the liquid drug DDFP, encapsulated in the microlipidcoated spheres (MLCSs), to target the human vein for construction of the gaseous plug inside the veins. Methods: The encapsulated liquid drug DDFP were delivered to the vein by injection of an emulsion. Releasing of the liquid drug DDFP results in an explosive growth of a gaseous plug inside the vein. The targeted vein was served as a rigid cylinder with a compliant coating. The boundary integral equation method has been employed for the numerical simulation of the hydrodynamic behavior of the gaseous plug inside the vein. Results: Numerical results showed that in the case of a rigid cylinder vein with an internal compliant coating, the maximum volume of the gaseous plug was smaller than the case of just a rigid cylinder vein. Furthermore, its elapsed time from the instant of bubble generation to the instant when the bubble reaches its maximum volume was shorter. Numerical results also showed that the compliant coating on the internal wall of the rigid cylindrical vein had a tendency of reducing the impact of the explosive growth of the gaseous plug. Conclusion: This numerical research showed that the compliant coating on the internal wall of the rigid cylindrical vein had the tendency of reducing the impact of the impulsive growth of the gaseous plug. Therefore, in the case of having severed arteriosclerosis, treatment of the cancerous or damaged tissues by use of the gaseous embolism must be done very carefully in order to prevent the hazardous effects of the gaseous plug’s impulsive growth.
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spelling pubmed-62098292018-11-05 Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating Shervani-Tabar, Mohammad T. Farzaneh, Babak Ahrabi, Reza Razavi, Seyed E. Bioimpacts Original Research [Image: see text] Introduction: Employing of gaseous plugs inside a vein for preventing of blood flow to the damaged or cancerous tissues has been known as a gas embolism in the medicine. In this research, a numerical investigation has been carried out on the delivery of the liquid drug DDFP, encapsulated in the microlipidcoated spheres (MLCSs), to target the human vein for construction of the gaseous plug inside the veins. Methods: The encapsulated liquid drug DDFP were delivered to the vein by injection of an emulsion. Releasing of the liquid drug DDFP results in an explosive growth of a gaseous plug inside the vein. The targeted vein was served as a rigid cylinder with a compliant coating. The boundary integral equation method has been employed for the numerical simulation of the hydrodynamic behavior of the gaseous plug inside the vein. Results: Numerical results showed that in the case of a rigid cylinder vein with an internal compliant coating, the maximum volume of the gaseous plug was smaller than the case of just a rigid cylinder vein. Furthermore, its elapsed time from the instant of bubble generation to the instant when the bubble reaches its maximum volume was shorter. Numerical results also showed that the compliant coating on the internal wall of the rigid cylindrical vein had a tendency of reducing the impact of the explosive growth of the gaseous plug. Conclusion: This numerical research showed that the compliant coating on the internal wall of the rigid cylindrical vein had the tendency of reducing the impact of the impulsive growth of the gaseous plug. Therefore, in the case of having severed arteriosclerosis, treatment of the cancerous or damaged tissues by use of the gaseous embolism must be done very carefully in order to prevent the hazardous effects of the gaseous plug’s impulsive growth. Tabriz University of Medical Sciences 2018 2017-09-18 /pmc/articles/PMC6209829/ /pubmed/30397582 http://dx.doi.org/10.15171/bi.2018.30 Text en © 2018 The Author(s) This work is published by BioImpacts as an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by-nc/4.0/). Non-commercial uses of the work are permitted, provided the original work is properly cited.
spellingShingle Original Research
Shervani-Tabar, Mohammad T.
Farzaneh, Babak
Ahrabi, Reza
Razavi, Seyed E.
Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating
title Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating
title_full Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating
title_fullStr Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating
title_full_unstemmed Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating
title_short Numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating
title_sort numerical study on the impulsive growth of a gaseous plug inside a cylindrical vein with compliant coating
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6209829/
https://www.ncbi.nlm.nih.gov/pubmed/30397582
http://dx.doi.org/10.15171/bi.2018.30
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