FYR 2021 Undergraduate RISE Impact Report- Research & Innovation- Prairie View A&M University

Page 159

Numerical Experimentation of Bio-physicochemical Interaction of Airborne Species in the Pulmonary Circulation

Diamy B Camara Mentor: Kazeem Olanrewaju Chemical Engineering Department Introduction: The human physiology is a complex network of systems and units meticulously design to function in unison and perpetuate innumerable operations needed to maintain body systems homeostasis[1-5]. These physiological operations are initiated and sustained by proper functioning of the delivery system (circulatory) system.The deliverables include nutrients, electrolytes, gaseous species, hormones, cells, wastes are transported by blood, a complex fluid, and transformed by interacting with one another and various organs, tissues, and cells of interest along the pathway of flow[6-8]. Cardiovascular/Circulatory system mainly addresses the systemic, portal, and pulmonary circulations of blood to organs of the body and the lungs respectively[7, 9] . Vital species needed for proper physiological functioning and homeostatically stability of the body systems are received at various sites, transported, and deliver via the bloodstream to the site of utilization (mostly cells) and disposal. Life-supporting gaseous molecules (O2 and CO2) and other airborne species (antigen) or gases access the physiological system through the respiratory tracts and are transported downstream to the alveoli where exchange via diffusion into the bloodstream occur[10-13]. The oxygenated blood is subsequently convey through the pulmonary vein and received into the cardiac unit (heart) via the left atrium. Preceding description succinctly delineate pulmonary circulation. This project will systematically explore various mechanisms associated with physiological and pathophysiological implications of biophysicochemical interaction of airborne species in the cardiopulmonary circulation system. Materials and Methods: Highlighting Species Transport and Transformation in the Pulmonary Circulation LoopA schematic flow process of species in the pulmonary circulation loop will be developed to have a clear perspective of species transport and transformation from one stage to another. Species transport begins at the respiratory system entrance, traverses and transformed through the various organs, tissues, and cells germane to the cardiopulmonary systems, and afterwards disperse to all other systems of the body via the systemic and portal circulation flow vessel for metabolisms and other physiological functionality. Defining Transport and Transformation Mechanism at each Stage of flow process Transport mechanism at each stage of the process was defined, and transformational mechanism was equally elucidated as the flow progresses within the pulmonary circulation loop. Specific mechanism was allotted to each stage in the flow process. Numerical Experimentation: Numerical experimentation involve the use computer and modeling software to perform experiments. This study will adopt two computational modelling platforms to conduct the numerical experimentation of biophysicochemical interaction of species delivery and disposal at the various sites in the pulmonary circulation system. The two computational platforms, which include Simpleware (Synopsys) and Comsol Multiphysics softwares, will be utilized sequentially for complex geometry development[14, 15]. Results and Discussion: The flow chart portraying step-by-step processes involve in the pulmonary circulation loop within the cardiovascular and respiratory systems was developed. The essence of the flow chart is to lucidly depict the different stages where transport and transformation of species occur within the pulmonary circulation. Organs within the loop are arranged in sequential order in the red borderline rectangular block flow diagram, while transport and transformation of species at different stages in the pulmonary circulation are highlighted in blue borderline rectangular block. The rationale behind the flow chart is the development of a platform that will assist in expressing explicitly the various physiological mechanisms underscoring the different specie transport and transformation processes involve in the pulmonary circulation. The next step is to expound qualitatively these mechanisms and develop/adopt various numerical model to quantitatively describe and characterize these physiological processes. Conclusion(s) or Summary: Development of the schematic flow chart advanced the research task a significant step forward and set a plausible platform for a qualitative depiction of the physiological mechanisms needed to clearly understand species transport and transformation within the pulmonary circulation loop. A clear view of where species transport and transformation apply within the pulmonary blood circulation circuit are made evident. Numerical quantification of species transport and transformation processes characterize by detail physiological mechanisms will be subsequently explored through modeling. Insight gained will be utilized to understand range of pathophysiological conditions associated with cardiopulmonary circulation and the pertinent diagnostic procedures and therapeutic measures neededPage to remedy the disease of 157 interest. The next step is to expound qualitatively these mechanisms and develop/adopt various numerical model to of 3


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Arash Karimbakhsh Asli

6min
pages 165-167

Caleb Riggins

3min
pages 170-173

Sultan Khalid

2min
pages 168-169

Diamy B Camara

5min
pages 159-160

Prevailer Mba

3min
pages 155-156

Indira S. Ribeiro

8min
pages 161-164

Aminata Diagne

3min
pages 153-154

Constantino Mansogo

4min
pages 157-158

Abidemi Awojuyigbe

2min
page 152

Ibrahim Arogundade

7min
pages 149-151

Ana Coronado

5min
pages 146-147

Daija Bullock-Marable

4min
pages 141-142

Jocelyn Mejia

6min
pages 143-145

Ines Frazier

3min
pages 137-138

Louisa Oze

3min
pages 135-136

Adaeze Eze

3min
pages 133-134

Princess Pinamang

3min
pages 139-140

Kalyse Houston

4min
pages 131-132

Kendall Lemons

3min
pages 129-130

Edgar R. Mendoza

3min
pages 125-126

Aijalon Shantavia Bettis

3min
pages 127-128

Jay Gonzalez

3min
pages 115-116

Brandon Bernal

6min
pages 119-120

Raven Blaylock

16min
pages 121-124

Ibrahim Arogundade

7min
pages 113-114

Armondo D. Waters

5min
pages 110-111

Camille Pierre

5min
pages 108-109

Alexis Adjorlolo

3min
pages 97-98

Jose Rosales

4min
pages 99-100

Dominique Ellis

1min
page 95

Enrique Brown-Spence

2min
page 101

Hannah Adams

4min
pages 104-107

Kimaja Clay

1min
page 94

Leslie Lively

3min
pages 92-93

Caleb Riggins

3min
pages 89-90

Indira Ribeiro

4min
pages 82-84

Samuel Bolufemi

3min
pages 87-88

Ariel Taylor

3min
pages 75-76

Aminata Diagne

3min
pages 73-74

Abidemi Awojuyigbe

2min
pages 71-72

Prevailer Mba

7min
pages 77-81

Viet Nguyen

4min
pages 69-70

Sheikh Tareq Ahmed

3min
pages 67-68

Kpehe Isam

4min
pages 64-65

Celine Okwosogu

2min
page 63

Renae Lawrence

2min
pages 61-62

Laura Ekezie

2min
pages 59-60

Louisa Oze

3min
pages 48-49

Ines Frazier

3min
pages 52-53

Adaeze Eze

3min
pages 50-51

Amorae Times

3min
pages 46-47

Jalen Ball

2min
page 43

Kendall Lemons

1min
page 42

Kalyse Houston

3min
pages 44-45

Aijalon Shantavia Bettis

3min
pages 40-41

Raven Blaylock

2min
pages 33-34

Camille Pierre

3min
pages 8-9

Paris Semien

2min
pages 38-39

Elizabeth Roque

2min
page 37

Ibrahim Arogundade

15min
pages 20-30

Edgar R. Mendoza

2min
pages 35-36

Jayla Laday

3min
pages 17-18

Brandon Bernäl

2min
pages 31-32
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