Impact of impulsive motion on the Eyring-Powell nanofluid flow across a rotating sphere in MHD convective regime: Entropy analysis
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作者:
Patil, P. M.
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KLE Technol Univ, B V Bhoomaraddi Coll Campus, Dept Math, Hubballi, Vijayanagar 580031, India
Univ Johannesburg, Inst Future Knowledge, Dept Math & Appl Math, Data Sci Disciplines Res Grp, POB 524, Auckland Pk, ZA-2006 Johannesburg, South AfricaKLE Technol Univ, B V Bhoomaraddi Coll Campus, Dept Math, Hubballi, Vijayanagar 580031, India
Patil, P. M.
[1
,2
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Goudar, Bharath
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Karnatak Univ, Dept Math, Pavate Nagar 580003, IndiaKLE Technol Univ, B V Bhoomaraddi Coll Campus, Dept Math, Hubballi, Vijayanagar 580031, India
Goudar, Bharath
[3
]
机构:
[1] KLE Technol Univ, B V Bhoomaraddi Coll Campus, Dept Math, Hubballi, Vijayanagar 580031, India
[2] Univ Johannesburg, Inst Future Knowledge, Dept Math & Appl Math, Data Sci Disciplines Res Grp, POB 524, Auckland Pk, ZA-2006 Johannesburg, South Africa
[3] Karnatak Univ, Dept Math, Pavate Nagar 580003, India
The widespread use of non-Newtonian fluids with impulsive motion in engineering sheds light on this investi-gation. This study investigates the entropy optimization in the Eyring-Powell nanofluid flow over an impulsive rotating, moving sphere in an unsteady combined convection regime with the effect of magnetized field, acti-vation energy, and liquid hydrogen diffusion. The angular velocity of the sphere and the free stream velocity combine to produce the impulsive motion seen here. The governing partial differential equations (PDEs) are formulated in dimensional form by incorporating the boundary layer approximation. After undergoing non-similar transformations, these PDEs are transformed into dimensionless nonlinear PDEs. Consequently, result-ing equations are linearized using the Quasilinearization method. An implicit finite difference method is employed to discretize the linearized equations. The findings are depicted through graphs with a variety of profiles and gradients. The fluid velocity and surface friction tend to decrease for Eyring-Powell nanofluid than the primary Newtonian nanofluid. The energy transfer strength is cut down by approximately 11% for rising values of magnetic field characteristics. A small change in the Brownian diffusion characteristics reinforces the mass transfer strength by 11% approximately. The entropy generation is pronounced more for linear combined convection (beta t = 0), whereas it is less for nonlinear combined convection (beta t =/ 0). Adopting nonlinear combined convection, a magnetic field over a moving sphere can reduce the entropy generation.
机构:
Shandong Univ Sci & Technol, Coll Math & Syst Sci, Qingdao, Peoples R ChinaShandong Univ Sci & Technol, Coll Math & Syst Sci, Qingdao, Peoples R China
Bhatti, M. M.
Sait, Sadiq M.
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King Fahd Univ Petr & Minerals, Res Inst, Ctr Commun & IT Res, Dhahran, Saudi ArabiaShandong Univ Sci & Technol, Coll Math & Syst Sci, Qingdao, Peoples R China
Sait, Sadiq M.
Ellahi, R.
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Int Islamic Univ, Dept Math & Stat, Res Inst, Pakistan & Ctr Modeling & Comp Simulat, Islamabad, Pakistan
King Fahd Univ Petr & Minerals, Res Inst, Ctr Modeling & Comp Simulat, Dhahran, Saudi ArabiaShandong Univ Sci & Technol, Coll Math & Syst Sci, Qingdao, Peoples R China
Ellahi, R.
Sheremet, Mikhail A.
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Tomsk State Univ, Fac Mech & Math, Dept Theoret Mech, Tomsk, RussiaShandong Univ Sci & Technol, Coll Math & Syst Sci, Qingdao, Peoples R China
Sheremet, Mikhail A.
Oztop, Hakan
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Firat Universitesi, Dept Mech Engn, Elazig, TurkeyShandong Univ Sci & Technol, Coll Math & Syst Sci, Qingdao, Peoples R China
机构:
Department of Applied Mathematics, Adama Science and Technology University, AdamaDepartment of Applied Mathematics, Adama Science and Technology University, Adama