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The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care

The high incidence of vascular ulcers and the difficulties encountered in their healing process require the understanding of their multiple etiologies to develop effective strategies focused on providing different treatment options. This work provides a description of the principles of the physics o...

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Autores principales: Robles-Romero, José Miguel, Romero-Martín, Macarena, Conde-Guillén, Gloria, Cruces-Romero, Daniel, Gómez-Salgado, Juan, Ponce-Blandón, José Antonio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7349071/
https://www.ncbi.nlm.nih.gov/pubmed/32481597
http://dx.doi.org/10.3390/healthcare8020147
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author Robles-Romero, José Miguel
Romero-Martín, Macarena
Conde-Guillén, Gloria
Cruces-Romero, Daniel
Gómez-Salgado, Juan
Ponce-Blandón, José Antonio
author_facet Robles-Romero, José Miguel
Romero-Martín, Macarena
Conde-Guillén, Gloria
Cruces-Romero, Daniel
Gómez-Salgado, Juan
Ponce-Blandón, José Antonio
author_sort Robles-Romero, José Miguel
collection PubMed
description The high incidence of vascular ulcers and the difficulties encountered in their healing process require the understanding of their multiple etiologies to develop effective strategies focused on providing different treatment options. This work provides a description of the principles of the physics of fluid dynamics related to vascular ulcers. The morphological characteristics of the cardiovascular system promote blood flow. The contraction force of the left ventricle is enhanced by its ability to reduce its radius of curvature and by increasing the thickness of the ventricular wall (Laplace’s Law). Arterial flow must overcome vascular resistance (Ohm’s equation). The elastic nature of the artery and the ability to reduce its diameter as flow rate progresses facilitate blood conduction at high speed up to arteriolar level, and this can be determined by the second equation of continuity. As it is a viscous fluid, we must discuss laminar flow, calculated by the Reynolds number, which favors proper conduction while aiming at the correct net filtration pressure. Any endothelial harmful process that affects the muscle wall of the vessel increases the flow speed, causing a decrease in capillary hydrostatic pressure, thus reducing the exchange of nutrients at the interstitial level. With regard to the return system, the flow direction is anti-gravity and requires endogenous aid to establish the Starling’s equilibrium. Knowledge on the physics of vascular fluid dynamics makes it easier to understand the processes of formation of these ulcers so as to choosing the optimal healing and prevention techniques for these chronic wounds.
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spelling pubmed-73490712020-07-22 The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care Robles-Romero, José Miguel Romero-Martín, Macarena Conde-Guillén, Gloria Cruces-Romero, Daniel Gómez-Salgado, Juan Ponce-Blandón, José Antonio Healthcare (Basel) Article The high incidence of vascular ulcers and the difficulties encountered in their healing process require the understanding of their multiple etiologies to develop effective strategies focused on providing different treatment options. This work provides a description of the principles of the physics of fluid dynamics related to vascular ulcers. The morphological characteristics of the cardiovascular system promote blood flow. The contraction force of the left ventricle is enhanced by its ability to reduce its radius of curvature and by increasing the thickness of the ventricular wall (Laplace’s Law). Arterial flow must overcome vascular resistance (Ohm’s equation). The elastic nature of the artery and the ability to reduce its diameter as flow rate progresses facilitate blood conduction at high speed up to arteriolar level, and this can be determined by the second equation of continuity. As it is a viscous fluid, we must discuss laminar flow, calculated by the Reynolds number, which favors proper conduction while aiming at the correct net filtration pressure. Any endothelial harmful process that affects the muscle wall of the vessel increases the flow speed, causing a decrease in capillary hydrostatic pressure, thus reducing the exchange of nutrients at the interstitial level. With regard to the return system, the flow direction is anti-gravity and requires endogenous aid to establish the Starling’s equilibrium. Knowledge on the physics of vascular fluid dynamics makes it easier to understand the processes of formation of these ulcers so as to choosing the optimal healing and prevention techniques for these chronic wounds. MDPI 2020-05-28 /pmc/articles/PMC7349071/ /pubmed/32481597 http://dx.doi.org/10.3390/healthcare8020147 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Robles-Romero, José Miguel
Romero-Martín, Macarena
Conde-Guillén, Gloria
Cruces-Romero, Daniel
Gómez-Salgado, Juan
Ponce-Blandón, José Antonio
The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care
title The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care
title_full The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care
title_fullStr The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care
title_full_unstemmed The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care
title_short The Physics of Fluid Dynamics Applied to Vascular Ulcers and Its Impact on Nursing Care
title_sort physics of fluid dynamics applied to vascular ulcers and its impact on nursing care
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7349071/
https://www.ncbi.nlm.nih.gov/pubmed/32481597
http://dx.doi.org/10.3390/healthcare8020147
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