Heat transfer in a triangular wavy channel with cuo-water nanofluids under pulsating flow
Autor: | Dogan Demiral, Selma Akcay, Unal Akdag |
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Přispěvatelé: | Mühendislik Fakültesi, [Akdag, Unal -- Demiral, Dogan] Aksaray Univ, Dept Mech Engn, Aksaray, Turkey -- [Akcay, Selma] Aksaray Univ, Inst Sci & Technol, Aksaray, Turkey |
Jazyk: | angličtina |
Rok vydání: | 2019 |
Předmět: |
Pressure drop
nanofluids Finite volume method Materials science Pulsating Flow Renewable Energy Sustainability and the Environment lcsh:Mechanical engineering and machinery 020209 energy Heat transfer enhancement Reynolds number Laminar flow 02 engineering and technology Mechanics Physics::Fluid Dynamics symbols.namesake Thermal conductivity Nanofluid Triangular Wavy-Channel Heat transfer Heat Transfer Enhancement 0202 electrical engineering electronic engineering information engineering symbols lcsh:TJ1-1570 Canofluids |
Zdroj: | Thermal Science, Vol 23, Iss 1, Pp 191-205 (2019) |
Popis: | WOS: 000460088000017 In this paper; heat transfer and pressure drop characteristics of CuO-water nano-fluid flow in a isothermally heated triangular-wavy channel under pulsating inlet conditions are numerically investigated. A numerical simulation is conducted by solving the governing continuity, momentum, and energy equations for laminar flow using the finite volume approach. In the studies, the main parameters including the Reynolds number, pulsating amplitude and frequency, are changed while the nanoparticle volume fraction and the other parameters are kept constant for all cases. Numerical results are compared with the steady flow conditions, which showed that heat transfer performance significantly increases due to improve thermal conductivity and the use of nanoparticles in the pulsating flow conditions. The results indicate that there is a high potential for promoting the thermal performance enhancement by using nanoparticles under pulsating flow in wavy channels. It is found that the heat transfer enhancement increases with increasing pulsating amplitude and Reynolds number, and there is a slight increase in pressure drop. The obtained results are given as a function of dimensionless parameters. |
Databáze: | OpenAIRE |
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