Eyuphan Manay
Erzurum Technical University
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Featured researches published by Eyuphan Manay.
Heat Transfer Engineering | 2017
Eyuphan Manay; Bayram Sahin
ABSTRACT The aim of this study is to determine the upper limitations of the particle volume fraction for heat transfer performance of TiO2–water nanofluids in microchannels. Nanofluids were prepared by the addition of TiO2 metallic nanoparticles into distilled water chosen as base fluid at five different volumetric ratios (0.25%, 0.5%, 1.0%, 1.5%, and 2.0%). The effects of the Reynolds number (100–750) and particle volume fraction at constant microchannel height (200 μm) on heat transfer and pressure drop characteristics were analyzed experimentally. Adding metallic oxide particles with nano dimensions into the base fluid did not cause excessive increase of friction coefficient but provided higher heat transfer than that of pure water. It was also observed that water–TiO2 nanofluid increased heat transfer up to 2.0 vol%, but heat transfer decreased after 2.0 vol%. Furthermore, the thermal resistance was calculated and it was seen that adding nanoparticles with an average diameter smaller than 25 nm into the base fluid caused the thermal resistance to decrease.
Journal of Nanomaterials | 2015
Bayram Sahin; Eyuphan Manay; Eda Feyza Akyürek
Heat transfer and pressure drop characteristics of water based CuO nanofluid inside a horizontal tube were investigated experimentally. The upper limitation of the particle volume fraction with respect to heat transfer performance was also found. CuO-water nanofluids with volume fractions of 0.5%, 1%, 2%, and 4% were prepared by dispersing the CuO nanoparticles with an average diameter of 33 nm into deionised water. Experiments were carried out under the steady-state, constant heat flux, and turbulent flow regime conditions. The variations of the average Nusselt number and the friction factor with the Reynolds number were presented. For all given particle volume concentrations, heat transfer enhancements were calculated. It was concluded that the particle volume concentrations higher than 1% vol. were not appropriate with respect to the heat transfer performance of the CuO-water nanofluid. No heat transfer enhancement was observed at Re = 4.000. The highest heat transfer enhancement was achieved at Re = 16.000 and Φ = 0.005.
Experimental Thermal and Fluid Science | 2013
Bayram Sahin; Gül Gedik Gültekin; Eyuphan Manay; Sendogan Karagoz
World Academy of Science, Engineering and Technology, International Journal of Mechanical, Aerospace, Industrial, Mechatronic and Manufacturing Engineering | 2012
Eyuphan Manay; Bayram Sahin; M Yilmaz; Kadir Gelis
International Journal of Heat and Mass Transfer | 2016
Eyuphan Manay; Bayram Sahin
Results in physics | 2018
Eda Feyza Akyürek; Kadir Gelis; Bayram Şahin; Eyuphan Manay
Results in physics | 2018
Eyuphan Manay; Eda Feyza Akyürek; Bayram Sahin
Journal of Thermal Analysis and Calorimetry | 2018
Eyuphan Manay; Emre Mandev
Proceeding of Second Thermal and Fluids Engineering Conference | 2017
Eyuphan Manay; Bayram Sahin; R. Kiziloglu; Murat Ceylan; Emre Mandev
World Academy of Science, Engineering and Technology, International Journal of Mechanical, Aerospace, Industrial, Mechatronic and Manufacturing Engineering | 2016
Feyza Eda Akyurek; Bayram Sahin; Kadir Gelis; Eyuphan Manay; Murat Ceylan