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Received March 24, 2021
Accepted June 25, 2021
- This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
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Influence of flow-induced oscillating disturbance on the surface heat transfer of impingement flow
Department of Energy and Power Engineering, Shandong University of Technology, Zibo 255000, P. R. China
xiaoniqi@sdut.edu.cn
Korean Journal of Chemical Engineering, November 2021, 38(11), 2217-2228(12), 10.1007/s11814-021-0879-0
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Abstract
Flow-induced oscillation is an effective way to enhance heat transfer, which requires no extra energy consumption and can prevent fouling and soot formation. To test the flow-induced oscillation effect on the heat transfer of impingement flow, an 18 mm wide and 30 μm thick membrane tape was mounted at the exit of the ejection pipe. As the ejection Reynolds number increased from 5280 to 9827, the oscillating frequency also increased. In addition, three different oscillating regimes were observed, these being quasi-still, 2D-oscillating and 3D oscillating, with the transition Re depending on the tape length. The heating plate was 3D-printed and electrical heating wires were embedded within it so as to predetermine the local heat flux by numerical analysis, and be able to calculate the heat transfer coefficient (HTC). The results demonstrate that heat transfer enhancement is more prominent in the vertical direction to the tape than in the parallel direction. Moreover, the distinctive heat transfer enhancement effect near the plate center becomes weaker as it goes toward the outside of the plate, and even turns negative with an increasing r/D. Using a longer piece of tape or having smaller intervals between the tape tip and plate was also shown to improve the heat transfer effect. The spontaneous oscillating disturbance method shows great promise for heat transfer regulation in impingement flow.
References
Sadeghianjahromi A, Wang CC, Renew. Sust. Energ. Rev., 137, 110470 (2021)
Webb RL, Principle of enhanced heat transfer, Wiley, New York (1994).
Ghanami S, Farhadi M, Protein Sci., 7(1), 9 (2019)
Hassan R, P Roy Soc Lond A Mat, 277(1368), 51 (1964)
Owen PR, J. Mech. Eng. Sci., 7(4), 431 (1965)
Lam K, Jiang GD, Liu Y, So R, Int. J. Numer Methods Fluids, 46(3), 289 (2004)
Zhang N, Adv. Mat. Res., 542-543, 66 (2012)
Duan DR, Ge PQ, Bi WB, Energy Conv. Manag., 103, 859 (2015)
Medeiros KAR, de Oliveira FLA, Barbosa CRH, de Oliveira EC, Measurement, 91, 576 (2016)
Ajayi OO, Agarana MC, Animasaun TO, Procedia Manuf., 7, 602 (2017)
Cheng L, Luan T, Du W, Xu M, Int. J. Heat Mass Transf., 52(3), 1053 (2009)
Mousa MH, Miljkovic N, Nawaz K, Renew. Sust. Energ. Rev., 137, 110566 (2021)
Hidalgo P, et al., Thermal Investigations of ICs and Systems (THERMINIC), 2010 16th International Workshop on (2010).
Herrault F, et al., 2012 IEEE 25th International Conference on Micro Electro Mechanical Systems (MEMS), 1217 (2012).
Ryu J, Park SG, Kim B, Sung HJ, J. Fluids Struct, 57, 159 (2015)
Krishan G, Aw KC, Sharma RN, Appl. Therm. Eng., 149, 1305 (2018)
Yong L, Xiao MC, Eur. J. Mech. B Fluids, 57, 40 (2016)
Agricola L, Prenter R, Lundgreen R, Hossainf M, Bons J, 53rd AIAA/SAE/ASEE Joint Propulsion Conference (2017).
Park T, Kara K, Kim D, Int. J. Heat Mass Transf., 124, 920 (2018)
Germano M, Piomelli U, Moin P, Cabot WH, Phys. Fluids A, 3(7), 1760 (1991)
Chorin P, Moreau F, Saury D, Int. J. Therm. Sci., 161, 106711 (2020)
Holger M, Adv. Heat Transf., 13, 1 (1977)
Camci C, Herr F, Int. J. Heat Mass Transf., 124(4), 770 (2002)
Hossain MA, Agricola L, Ameri A, Gregory JW, Bons JP, 2018 AIAA Aerospace Sciences Meeting (2018).
Webb RL, Principle of enhanced heat transfer, Wiley, New York (1994).
Ghanami S, Farhadi M, Protein Sci., 7(1), 9 (2019)
Hassan R, P Roy Soc Lond A Mat, 277(1368), 51 (1964)
Owen PR, J. Mech. Eng. Sci., 7(4), 431 (1965)
Lam K, Jiang GD, Liu Y, So R, Int. J. Numer Methods Fluids, 46(3), 289 (2004)
Zhang N, Adv. Mat. Res., 542-543, 66 (2012)
Duan DR, Ge PQ, Bi WB, Energy Conv. Manag., 103, 859 (2015)
Medeiros KAR, de Oliveira FLA, Barbosa CRH, de Oliveira EC, Measurement, 91, 576 (2016)
Ajayi OO, Agarana MC, Animasaun TO, Procedia Manuf., 7, 602 (2017)
Cheng L, Luan T, Du W, Xu M, Int. J. Heat Mass Transf., 52(3), 1053 (2009)
Mousa MH, Miljkovic N, Nawaz K, Renew. Sust. Energ. Rev., 137, 110566 (2021)
Hidalgo P, et al., Thermal Investigations of ICs and Systems (THERMINIC), 2010 16th International Workshop on (2010).
Herrault F, et al., 2012 IEEE 25th International Conference on Micro Electro Mechanical Systems (MEMS), 1217 (2012).
Ryu J, Park SG, Kim B, Sung HJ, J. Fluids Struct, 57, 159 (2015)
Krishan G, Aw KC, Sharma RN, Appl. Therm. Eng., 149, 1305 (2018)
Yong L, Xiao MC, Eur. J. Mech. B Fluids, 57, 40 (2016)
Agricola L, Prenter R, Lundgreen R, Hossainf M, Bons J, 53rd AIAA/SAE/ASEE Joint Propulsion Conference (2017).
Park T, Kara K, Kim D, Int. J. Heat Mass Transf., 124, 920 (2018)
Germano M, Piomelli U, Moin P, Cabot WH, Phys. Fluids A, 3(7), 1760 (1991)
Chorin P, Moreau F, Saury D, Int. J. Therm. Sci., 161, 106711 (2020)
Holger M, Adv. Heat Transf., 13, 1 (1977)
Camci C, Herr F, Int. J. Heat Mass Transf., 124(4), 770 (2002)
Hossain MA, Agricola L, Ameri A, Gregory JW, Bons JP, 2018 AIAA Aerospace Sciences Meeting (2018).