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NUMERICAL ANALYSIS OF HEAT TRANSFER ENHANCING PARAMETERS ON IMPINGING AIR JETS

Yıl 2019, Cilt: 37 Sayı: 3, 1017 - 1030, 01.09.2020

Öz

Impinging air jets are widely used in industry for heating, cooling and drying. Single and multiple impinging air jets provide the best configuration for convective heat and mass transfer to a surface. In this study, the convection air jets were examined numerically. Air velocity (12, 23 and 35 m/s), geometry dimensions (H/D distance= 4, 6, 8, 10, 12), number of nozzles (single and double) and the distance between nozzles (n = 50, 75, 100) were selected as parameters. For single nozzle, the most efficient condition was seen in H/D=10 and the highest Reynolds number. It was determined that the efficiency of heat transfer after H/D=10 has decreased for single nozzle. The most efficient heat transfer for the double nozzle was obtained for the 12114 of Reynolds number and H/D=8. In this study, a numerical approach is presented to find an optimum solution for cooling problems in the electronics industry.

Kaynakça

  • [1] Calisir T., Caliskan S., Kılıc M., Baskaya S., (2017) Numerical Investigation of Flow Field on Ribbed Surfaces Using Impinging Jets, Journal of the Faculty of Engineering and Architecture of Gazi University, 32(1), 119-130.
  • [2] Hatemi M., Song D., Jing D., (2016) Optimization of a Circular-Wavy Cavity Filled by Nanofluid Under the Natural Convection Heat Transfer Condition, International Journal of Heat and Mass Transfer, 98, 758-767.
  • [3] Tang W., Hatami M., Zhou J., Jing D., (2017) Natural Convection Heat Transfer in a Nanofluid-Filled Cavity with Double Sinusoidal Wavy Walls of Various Phase Deviations, International Journal of Heat and Mass Transfer,115(A), 430-440.
  • [4] Zhou J., Hatami M., Song D., Jing D., (2016) Design of Microchannel Heat Sink with Wavy Channel and its Time-Efficient Optimization with Combined RSM and FVM Methods, International Journal of Heat and Mass Transfer, 103, 715-724.
  • [5] Hardisty H., Can M., (1983) An Experimental Investigation Into The Effect of Changes in the Geometry of a Slot Nozzle on the Heat Transfer Characteristics of an Impinging Air Jet, Proc. Inst. Mech. Engs., 197C, 7-15.
  • [6] Gau C., Chung C.M., (1991) Surface Curvature Effect on Slot- Air-Jet Impingement Cooling Flow and Heat Transfer Process, Institute of Aeronautics and Astronautics, National Cheng Kung University, Tainan, Taiwan.
  • [7] Golcu M., Yazici H., Akcay M., Koseoglu M.F., Sekmen Y., (2012) Experimental Investigation of Cooling With Multiple Air Jets on Auto Glass Tempering, Journal of the Faculty of Engineering and Architecture of Gazi University, 27, 775-783.
  • [8] Fregeau M., Saeed F., Paraschiviou I., (2005) Numerical Heat Transfer Correlation For Array of Hot-Air Jets Impinging on 3-Dimensional Concave Surface, Journal of Aircraft , 42(3), 665-670.
  • [9] Celik N., Eren H., (2009) Effects of Stagnation Region Turbulence of an Impinging Jet on Heat Transfer, Journal of Thermal Science and Technology, 30(1), 91-98.
  • [10] Garimella V. P., (2001) Local Heat Transfer Distributions in Confined Multiple Air Jet Impingement, ASME Journal of Electronic Packaging, 123(3), 165-172.
  • [11] Elibol E. A., Turkoglu H., (2017) Numerical Investigation of Impinging Jets on a Flat Plate Covered with Porous Layer, The Black Sea Journal of Sciences, 7(1), 9-28.
  • [12] Geers L.F.G., Tummers M. J., Bueninck T. J., Hanjalic K.., (2008) Heat Transfer Correlation for Hexagonal and In-Line Arrays of Impinging Jets, International Journal of Heat and Mass Transfer, 51(21-22), 5389–5399.
  • [13] O’Donovan T.S., (2005) Fluid Flow and Heat Transfer of an Impinging Air Jet, PhD Thesis, Department of Mechanical & Manufacturing Engineering, Trinity College, Dublin 2.
  • [14] Baydar E., Ozmen Y., (2005) An Experimental and Numerical Investigation on a Confined Impinging Air Jet at High Reynolds Numbers, Applied Thermal Engineering, 25, 409-421.
  • [15] Etemoglu A.B., Can M., (2013) Performance Studies of Energy Consumption for Single and Multiple Nozzle System Under Impinging Air Jets, Heat and Mass Transfer, 9(8), 1057-1070.
  • [16] Turkan B., Etemoglu A.B., Can M., (2018) An Investigation Into Evaporative Ink Drying Process on Forced Convective Heat and Mass Transfer Under Impinging Air Jets, Heat and Mass Transfer, 55(5), 1359-1369.
  • [17] Beitelmal A. H., Saad M. A., Patel C. D., (2000) The Effect of Inclination on the Heat Transfer Between a Flat Surface and an Impinging Two-Dimensional Air Jet, Int. J. Heat Fluid Flow, 21, 156-163.
  • [18] Olsson E.E.M., Ahrné L.M., Tragardh A.C., (2004) Heat Transfer from a Slot Air Jet Impinging on a Circular Cylinder, Journal of Food Engineering, 63, 393-401.
  • [19] Wilcox D. C., (1988) Reassessment of the Scale-Determining Equation for Advanced Turbulence Models, AIAA Journal, 26, 1299–1310.
  • [20] Singh D., Premachandran B., Kohli S., (2012) Assessment of Turbulence Models for Jet Impingement Cooling of Cylindrical Surface, International Congress on Computational Mechanics and Simulation (ICCMS), IIT Hyderabad, 10-12 December.
  • [21] Martin H., (1977) Heat and Mass Transfer Between Impinging Gas Jets and Solid Surfaces, Advances in Heat Transfer, 13, Academic Press, New York, 1977.
  • [22] Gardon R., Cobonpue J., (1962) Heat Transfer between a Flat Plate and Jets of Air Impinging on It, International Developments in Heat Transfer: Second International Heat Transfer Conference, pp. 454–460, ASME, New York.
Yıl 2019, Cilt: 37 Sayı: 3, 1017 - 1030, 01.09.2020

Öz

Kaynakça

  • [1] Calisir T., Caliskan S., Kılıc M., Baskaya S., (2017) Numerical Investigation of Flow Field on Ribbed Surfaces Using Impinging Jets, Journal of the Faculty of Engineering and Architecture of Gazi University, 32(1), 119-130.
  • [2] Hatemi M., Song D., Jing D., (2016) Optimization of a Circular-Wavy Cavity Filled by Nanofluid Under the Natural Convection Heat Transfer Condition, International Journal of Heat and Mass Transfer, 98, 758-767.
  • [3] Tang W., Hatami M., Zhou J., Jing D., (2017) Natural Convection Heat Transfer in a Nanofluid-Filled Cavity with Double Sinusoidal Wavy Walls of Various Phase Deviations, International Journal of Heat and Mass Transfer,115(A), 430-440.
  • [4] Zhou J., Hatami M., Song D., Jing D., (2016) Design of Microchannel Heat Sink with Wavy Channel and its Time-Efficient Optimization with Combined RSM and FVM Methods, International Journal of Heat and Mass Transfer, 103, 715-724.
  • [5] Hardisty H., Can M., (1983) An Experimental Investigation Into The Effect of Changes in the Geometry of a Slot Nozzle on the Heat Transfer Characteristics of an Impinging Air Jet, Proc. Inst. Mech. Engs., 197C, 7-15.
  • [6] Gau C., Chung C.M., (1991) Surface Curvature Effect on Slot- Air-Jet Impingement Cooling Flow and Heat Transfer Process, Institute of Aeronautics and Astronautics, National Cheng Kung University, Tainan, Taiwan.
  • [7] Golcu M., Yazici H., Akcay M., Koseoglu M.F., Sekmen Y., (2012) Experimental Investigation of Cooling With Multiple Air Jets on Auto Glass Tempering, Journal of the Faculty of Engineering and Architecture of Gazi University, 27, 775-783.
  • [8] Fregeau M., Saeed F., Paraschiviou I., (2005) Numerical Heat Transfer Correlation For Array of Hot-Air Jets Impinging on 3-Dimensional Concave Surface, Journal of Aircraft , 42(3), 665-670.
  • [9] Celik N., Eren H., (2009) Effects of Stagnation Region Turbulence of an Impinging Jet on Heat Transfer, Journal of Thermal Science and Technology, 30(1), 91-98.
  • [10] Garimella V. P., (2001) Local Heat Transfer Distributions in Confined Multiple Air Jet Impingement, ASME Journal of Electronic Packaging, 123(3), 165-172.
  • [11] Elibol E. A., Turkoglu H., (2017) Numerical Investigation of Impinging Jets on a Flat Plate Covered with Porous Layer, The Black Sea Journal of Sciences, 7(1), 9-28.
  • [12] Geers L.F.G., Tummers M. J., Bueninck T. J., Hanjalic K.., (2008) Heat Transfer Correlation for Hexagonal and In-Line Arrays of Impinging Jets, International Journal of Heat and Mass Transfer, 51(21-22), 5389–5399.
  • [13] O’Donovan T.S., (2005) Fluid Flow and Heat Transfer of an Impinging Air Jet, PhD Thesis, Department of Mechanical & Manufacturing Engineering, Trinity College, Dublin 2.
  • [14] Baydar E., Ozmen Y., (2005) An Experimental and Numerical Investigation on a Confined Impinging Air Jet at High Reynolds Numbers, Applied Thermal Engineering, 25, 409-421.
  • [15] Etemoglu A.B., Can M., (2013) Performance Studies of Energy Consumption for Single and Multiple Nozzle System Under Impinging Air Jets, Heat and Mass Transfer, 9(8), 1057-1070.
  • [16] Turkan B., Etemoglu A.B., Can M., (2018) An Investigation Into Evaporative Ink Drying Process on Forced Convective Heat and Mass Transfer Under Impinging Air Jets, Heat and Mass Transfer, 55(5), 1359-1369.
  • [17] Beitelmal A. H., Saad M. A., Patel C. D., (2000) The Effect of Inclination on the Heat Transfer Between a Flat Surface and an Impinging Two-Dimensional Air Jet, Int. J. Heat Fluid Flow, 21, 156-163.
  • [18] Olsson E.E.M., Ahrné L.M., Tragardh A.C., (2004) Heat Transfer from a Slot Air Jet Impinging on a Circular Cylinder, Journal of Food Engineering, 63, 393-401.
  • [19] Wilcox D. C., (1988) Reassessment of the Scale-Determining Equation for Advanced Turbulence Models, AIAA Journal, 26, 1299–1310.
  • [20] Singh D., Premachandran B., Kohli S., (2012) Assessment of Turbulence Models for Jet Impingement Cooling of Cylindrical Surface, International Congress on Computational Mechanics and Simulation (ICCMS), IIT Hyderabad, 10-12 December.
  • [21] Martin H., (1977) Heat and Mass Transfer Between Impinging Gas Jets and Solid Surfaces, Advances in Heat Transfer, 13, Academic Press, New York, 1977.
  • [22] Gardon R., Cobonpue J., (1962) Heat Transfer between a Flat Plate and Jets of Air Impinging on It, International Developments in Heat Transfer: Second International Heat Transfer Conference, pp. 454–460, ASME, New York.
Toplam 22 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Mühendislik
Bölüm Research Articles
Yazarlar

Burak Turkan Bu kişi benim 0000-0002-4019-7835

Akin Burak Etemoglu Bu kişi benim 0000-0001-8022-1185

Yayımlanma Tarihi 1 Eylül 2020
Gönderilme Tarihi 26 Nisan 2019
Yayımlandığı Sayı Yıl 2019 Cilt: 37 Sayı: 3

Kaynak Göster

Vancouver Turkan B, Etemoglu AB. NUMERICAL ANALYSIS OF HEAT TRANSFER ENHANCING PARAMETERS ON IMPINGING AIR JETS. SIGMA. 2020;37(3):1017-30.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK https://eds.yildiz.edu.tr/sigma/