TY - JOUR
T1 - Parametric Optimization of Entropy Generation in Hybrid Nanofluid in Contracting/Expanding Channel by Means of Analysis of Variance and Response Surface Methodology
AU - Zeeshan, Ahmad
AU - Ellahi, Rahmat
AU - Rafique, Muhammad Anas
AU - Sait, Sadiq M.
AU - Shehzad, Nasir
N1 - Publisher Copyright:
© 2024 by the authors.
PY - 2024/10
Y1 - 2024/10
N2 - This study aims to propose a central composite design (CCD) combined with response surface methodology (RSM) to create a statistical experimental design. A new parametric optimization of entropy generation is presented. The flow behavior of magnetohydrodynamic hybrid nanofluid (HNF) flow through two flat contracting expanding plates of channel alongside radiative heat transmission was considered. The lower fixed plate was externally heated whereas the upper porous plate was cooled by injecting a coolant fluid with a uniform velocity inside the channel. The resulting equations were solved by the Homotopic Analysis Method using MATHEMATICA 10 and Minitab 17.1. The design consists of several input factors, namely a magnetic field parameter ((Formula presented.)), radiation parameter ((Formula presented.)) and group parameter ((Formula presented.)). To obtain the values of flow response parameters, numerical experiments were used. Variables, especially the entropy generation ((Formula presented.)), were considered for each combination of design. The resulting RSM empirical model obtained a high coefficient of determination, reaching 99.97% for the entropy generation number ((Formula presented.)). These values show an excellent fit of the model to the data.
AB - This study aims to propose a central composite design (CCD) combined with response surface methodology (RSM) to create a statistical experimental design. A new parametric optimization of entropy generation is presented. The flow behavior of magnetohydrodynamic hybrid nanofluid (HNF) flow through two flat contracting expanding plates of channel alongside radiative heat transmission was considered. The lower fixed plate was externally heated whereas the upper porous plate was cooled by injecting a coolant fluid with a uniform velocity inside the channel. The resulting equations were solved by the Homotopic Analysis Method using MATHEMATICA 10 and Minitab 17.1. The design consists of several input factors, namely a magnetic field parameter ((Formula presented.)), radiation parameter ((Formula presented.)) and group parameter ((Formula presented.)). To obtain the values of flow response parameters, numerical experiments were used. Variables, especially the entropy generation ((Formula presented.)), were considered for each combination of design. The resulting RSM empirical model obtained a high coefficient of determination, reaching 99.97% for the entropy generation number ((Formula presented.)). These values show an excellent fit of the model to the data.
KW - analysis of variance
KW - entropy generation
KW - parametric optimization
KW - response surface methodology
UR - https://www.scopus.com/pages/publications/85205583144
U2 - 10.3390/inventions9050092
DO - 10.3390/inventions9050092
M3 - Article
AN - SCOPUS:85205583144
SN - 2411-5134
VL - 9
JO - Inventions
JF - Inventions
IS - 5
M1 - 92
ER -