TY - JOUR
T1 - Combined effects of homogeneous and heterogeneous reactions on peristalsis of Ree-Eyring liquid
T2 - Application in hemodynamic flow
AU - Vaidya, Hanumesh
AU - Choudhari, Rajashekhar
AU - Mebarek-Oudina, Fateh
AU - Animasaun, Isaac Lare
AU - Prasad, Kerehalli Vinayaka
AU - Makinde, Oluwale Daniel
N1 - Publisher Copyright:
© 2020 Wiley Periodicals LLC
PY - 2021/5
Y1 - 2021/5
N2 - This research examines the influence of homogeneous and heterogeneous chemical reactions on the peristaltic flow via an inclined permeable channel. The current investigation emphasizes on modeling the flow of blood in narrow arteries by taking convective and wall properties into account. The Ree-Eyring non-Newtonian model is used to govern the fluid flow due to its significance in understanding the behavior of dilatant, pseudoplastic, and viscous liquids. The variation in variable viscosity and thermal conductivity is considered for analyzing the complex rheological behavior of blood. The similarity transformations are used in the process of nondimensionalization. The series solution procedure is adopted to solve the governing nonlinear differential equations. The expressions for velocity, temperature, concentration, and trapped bolus are obtained. The computational results are analyzed with the help of graphs for shear thickening, shear thinning, and Newtonian fluid models. One of the significant findings of the current model is that an introduction of variable liquid properties improves the temperature and velocity profiles for Newtonian and pseudoplastic fluid models. Compared with the other theoretical models developed, the rheological and flow properties of various biological fluids can be derived from the model used in the present investigation.
AB - This research examines the influence of homogeneous and heterogeneous chemical reactions on the peristaltic flow via an inclined permeable channel. The current investigation emphasizes on modeling the flow of blood in narrow arteries by taking convective and wall properties into account. The Ree-Eyring non-Newtonian model is used to govern the fluid flow due to its significance in understanding the behavior of dilatant, pseudoplastic, and viscous liquids. The variation in variable viscosity and thermal conductivity is considered for analyzing the complex rheological behavior of blood. The similarity transformations are used in the process of nondimensionalization. The series solution procedure is adopted to solve the governing nonlinear differential equations. The expressions for velocity, temperature, concentration, and trapped bolus are obtained. The computational results are analyzed with the help of graphs for shear thickening, shear thinning, and Newtonian fluid models. One of the significant findings of the current model is that an introduction of variable liquid properties improves the temperature and velocity profiles for Newtonian and pseudoplastic fluid models. Compared with the other theoretical models developed, the rheological and flow properties of various biological fluids can be derived from the model used in the present investigation.
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U2 - 10.1002/htj.21995
DO - 10.1002/htj.21995
M3 - Article
AN - SCOPUS:85096669833
SN - 2688-4534
VL - 50
SP - 2592
EP - 2609
JO - Heat Transfer
JF - Heat Transfer
IS - 3
ER -