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Date of download: 10/13/2017 Copyright © ASME. All rights reserved.

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1 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: (a) Schematic diagram of the test facility and (b) schematic of the target plate assembly

2 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: SEM image of CuO nanoparticle

3 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Variation of thermal conductivity of nanofluids with temperature

4 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Variation of absolute viscosity of nanofluids with temperature

5 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Thermal images during transient cooling of hot surface with nanofluids ф = 0.15 at Re = 5000

6 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Surface temperature transients during cooling of the hot foil at Re = 8000 and l/d = 6

7 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Variation of stagnation point Nusselt number with Reynolds numbers for: (a) l/d = 6 and (b) l/d = 12

8 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Variation of heat transfer coefficient with radial location: (a) Re = 5000 and (b) 9500

9 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Variation of surface heat flux with temperature at Re = 5000

10 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: The SEM image of the hot foil after impingement by: (a) water and (b) CuO–water nanofluids

11 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Contact angle for hot steel foil after liquid jet impingement: (a) water, (b) 0.15% CuO–water nanofluids, and (c) 0.60% CuO–water nanofluids

12 Date of download: 10/13/2017 Copyright © ASME. All rights reserved. From: An Experimental Investigation on Heat Transfer Characteristics of Hot Surface by Using CuO–Water Nanofluids in Circular Jet Impingement Cooling J. Heat Transfer. 2017;140(1): doi: / Figure Legend: Comparison of predicted Nusselt number with experimental Nusselt number


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