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Influence of quadratic thermal radiation and activation energy impacts over oblique stagnation point hybrid nanofluid flow across a cylinder

J. MadhuDepartment of Studies in Mathematics, Davangere University, Davangere 577004, Karnataka, INDIAJ. K. MadhukeshComputational Science Lab, Amrita School of Engineering, Amrita Vishwa Vidyapeetham, Bengaluru 560035, Karnataka, INDIAIoannis E. SarrisDepartment of Mechanical Engineering, University of West Attica, 12244 Athens, GreeceB. C. PrasannakumaraDepartment of Studies in Mathematics, Davangere University, Davangere 577004, Karnataka, INDIAG. K. RameshNehad Ali ShahDepartment of Mathematics and Statistics, College of Science, Imam Mohammad Ibn Saud Islamic University (IMSIU), Riyadh 11623, Saudi ArabiaBagh AliSchool of Mechanical Engineering and Automation, Harbin Institute of Technology, Shenzhen 518055, ChinaC. S. K. RajuDepartment of Mathematics, GITAM School of Science, GITAM Deemed to be University, Bangalore-Campus, Karnataka-562163Abderrahim WakifLaboratory of Mechanics, Faculty of Sciences Ain Chock, University Hassan II of Casablanca, MoroccoNoor MuhammadAbdus Salam School of Mathematical Sciences, Government College University, Lahore 54600, PakistanH. AshrafDepartment of Mathematics, University of Okara, Okara Pakistan
2024en
ABI

Аннотация

Quadratic thermal radiation is a fundamental term within the field of radiative heat transfer, which pertains to the interaction of thermal radiation. It encompasses a quadratic correlation between temperature and radiative qualities. Although linear thermal radiation is more prevalent in numerous everyday applications, non-linear thermal radiation is important in some situations, particularly where a more precise representation of the radiative transfer of heat is required. The phenomenon assumes a crucial function in some contexts that need enhanced accuracy in modeling radiative heat transfer. In view of this, the present investigation is carried out to examine the hybrid nanofluid flow across a cylinder under the influence of quadratic, nonlinear and linear thermal radiation and activation energy. The governing system of nonlinear differential equations is transformed into a system of ordinary differential equations via similarity transformations. The current study presents the results utilizing the shooting and Runge-Kutta Fehlberg 45 numerical scheme. The outcomes show that the curvature constraint will improve all three profiles while solid fraction decreases velocity and raises the other two profiles. Quadratic thermal radiation shows less temperature distribution, followed by linear and non-linear thermal radiation cases. The rate of thermal distribution improves 0.60% for linear thermal radiation case, 0.52% for nonlinear thermal radiation case and 0.656% for quadratic thermal radiation case from hybrid nanofluid to nanofluid. Further, the rate of mass transfer shows 0.068% improvement for from hybrid nanofluid to nanofluid. The results provide useful insights that may be used to enhance system efficiency across various applications, including but not limited to the mechanics of fluids, chemical technology, and thermal administration.

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