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Impacts of Freezing Temperature Based Thermal Conductivity on the Heat Transfer Gradient in Nanofluids: Applications for a Curved Riga Surface.
Zaidi, Syed Zulfiqar Ali; Khan, Umar; Ahmed, Naveed; Mohyud-Din, Syed Tauseef; Chu, Yu-Ming; Khan, Ilyas; Nisar, Kottakkaran Sooppy.
Afiliação
  • Adnan; Department of Mathematics, Mohi-ud-Din Islamic University, Nerian Sharif AJ&K, Trarkhel 12080, Pakistan.
  • Zaidi SZA; Department of Mathematics, COMSATS University Islamabad, Abbottabad Campus, Abbottabad 22010 Pakistan.
  • Khan U; Department of Mathematics and Statistics, Hazara University, Mansehra 21120, Pakistan.
  • Ahmed N; Department of Mathematics, Faculty of Sciences, HITEC University Taxila Cantt, Taxila 47070, Pakistan.
  • Mohyud-Din ST; University of Multan, Multan 60000, Pakistan.
  • Chu YM; Department of Mathematics, Huzhou University, Huzhou 313000, China.
  • Khan I; Faculty of Mathematics and Statistics, Ton Duc Thang University, Ho Chi Minh City 72915, Vietnam.
  • Nisar KS; Department of Mathematics, College of Arts and Sciences, Prince Sattam bin Abdulaziz University, Wadi Aldawaser 11991, Saudi Arabia.
Molecules ; 25(9)2020 May 05.
Article em En | MEDLINE | ID: mdl-32380658
ABSTRACT
The flow of nanofluid over a curved Riga surface is a topic of interest in the field of fluid dynamics. A literature survey revealed that the impacts of freezing temperature and the diameter of nanoparticles on the heat transfer over a curved Riga surface have not been examined so far. Therefore, the flow of nanoparticles, which comprises the influences of freezing temperature and nanoparticle diameter in the energy equation, was modeled over a curved Riga surface. The model was reduced successfully in the nondimensional version by implementing the feasible similarity transformations and effective models of nanofluids. The coupled nonlinear model was then examined numerically and highlighted the impacts of various flow quantities in the flow regimes and heat transfer, with graphical aid. It was examined that nanofluid velocity dropped by increasing the flow parameters γ and S, and an abrupt decrement occurred at the surface of the Riga sheet. The boundary layer region enhances for larger γ. The temperature distribution was enhanced for a more magnetized nanofluid, and the thermal boundary layer increased with a larger R parameter. The volume fraction of the nanoparticles favors the effective density and dynamic viscosity of the nanofluids. A maximum amount of heat transfer at the surface was observed for a more magnetized nanofluid.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Nanopartículas / Óxido de Alumínio Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Nanopartículas / Óxido de Alumínio Idioma: En Ano de publicação: 2020 Tipo de documento: Article