TY - JOUR
T1 - Impact of higher-order chemical reaction with generalized Fourier and Fick law on a Maxwell nanofluid flow past a rotating cone with variable thermal conductivity
AU - Ramzan, Muhammad
AU - Shaheen, Naila
AU - Ghazwani, Hassan Ali S.
AU - Nisar, Kottakkaran Sooppy
AU - Ahamed Saleel, C.
N1 - Publisher Copyright:
© World Scientific Publishing Company.
PY - 2023/3/20
Y1 - 2023/3/20
N2 - This paper studies a chemical reactive Maxwell nanofluid flow in porous media with generalized Fourier and Fick laws in the presence of temperature-dependent thermal conductivity and robin conditions past a spinning cone. The characteristics of the fluid flow are examined using the Buongiorno nanofluid model. The equations that regulate the flow are highly nonlinear and are simplified using similarity transformations. Numerical solution is obtained by employing the bvp4c technique. The characteristics of various parameters on tangential and azimuthal velocities, heat, and mass transfers are depicted graphically. An opposing behavior on the tangential and azimuthal velocity fields is depicted in elevating the Deborah number. The solutal field upsurges on increasing the order of the reaction. The mass flux strengthens by augmenting the Schmidt number and solutal relaxation time. The validation of the proposed model in the limiting case is also given.
AB - This paper studies a chemical reactive Maxwell nanofluid flow in porous media with generalized Fourier and Fick laws in the presence of temperature-dependent thermal conductivity and robin conditions past a spinning cone. The characteristics of the fluid flow are examined using the Buongiorno nanofluid model. The equations that regulate the flow are highly nonlinear and are simplified using similarity transformations. Numerical solution is obtained by employing the bvp4c technique. The characteristics of various parameters on tangential and azimuthal velocities, heat, and mass transfers are depicted graphically. An opposing behavior on the tangential and azimuthal velocity fields is depicted in elevating the Deborah number. The solutal field upsurges on increasing the order of the reaction. The mass flux strengthens by augmenting the Schmidt number and solutal relaxation time. The validation of the proposed model in the limiting case is also given.
KW - Fourier and Fick law
KW - higher-order chemical reaction
KW - Maxwell nanofluid
KW - Rotating cone
KW - temperature-dependent thermal conductivity
UR - https://www.scopus.com/pages/publications/85140342424
U2 - 10.1142/S0217979223500625
DO - 10.1142/S0217979223500625
M3 - Article
AN - SCOPUS:85140342424
SN - 0217-9792
VL - 37
JO - International Journal of Modern Physics B
JF - International Journal of Modern Physics B
IS - 7
M1 - 2350062
ER -