Araştırma Makalesi
BibTex RIS Kaynak Göster
Yıl 2023, , 901 - 911, 04.08.2023
https://doi.org/10.18186/thermal.1329554

Öz

Kaynakça

  • [1] Al Tae’y KA, Jaddoa AA, ABD HS. A loop thermosyphon for liquid cooled minichannels heat sink with pulsate surface heat flux. J Therm Eng 2021;7:1030–1038. [CrossRef]
  • [2] Bilalov TR, Zakharov AA, Jaddoa AA, Gumerov FM, Le Neindre B. Treatment of different types of cotton fabrics by ammonium palmitate in a supercritical CO2 environment. J Supercrit Fluids 2017;130:47–55. [CrossRef]
  • [3] Jaddoa AA. Convection heat transfer analysis with flow resistance for mini–helically coiled tubes at supercritical pressures experimentally. Int J Heat Technol 2021;39:817–824. [CrossRef]
  • [4] Jaddoa AA. Convection heat transfer performance for the Scf–Co2 media in mini–tube with fins experimentally. J Eng Sci Technol 2021;16:3407–3420.
  • [5] Kkihlefa BJ, Jaddoa AA, Reja AH. Experimental investigation of heat transfer features for vertical tube using porous media and Carbon dioxide. J Mech Eng Res Develop 2021;44:188–195. [6] Huai X, Koyama S. Heat transfer characteristics of supercritical CO2 flow in small–channeled structures. Exp Heat Trans 2007;20:19–33. [CrossRef]
  • [7] Huaia XL, Koyama S, Zhao TS. An experimental study of flow and heat transfer of supercritical carbon dioxide in multi–port mini channels under cooling conditions. Chem Eng Sci 2005;60:3337–3345. [CrossRef]
  • [8] Petukhov BS. Heat transfer and friction in turbulent pipe flow with variable physical properties. Adv Heat Transf 1970;6:504–564. [CrossRef]
  • [9] Hall WB. Heat transfer near the critical point. Adv Heat Transf 1971;7:1–86. [CrossRef]
  • [10] Polyakov AF. Heat transfer under supercritical pressures. Adv Heat Transf 1991;21:1–53. [CrossRef]
  • [11] Afshin JG, Asadi A. Improved forced convective heat transfer correlations for liquids in the near–critical region. AIAA J 1985;24:2030–2037. [CrossRef]
  • [12] Pitla S, Groll S, Eckhard A, Ramadhyani S. New correlation for the heat transfer coefficient during in–tube cooling of turbulent supercritical carbon dioxide. Int J Refrig 2002;25:887–895. [CrossRef]
  • [13] Liao SM, Zhao TS. Measurements of heat transfer coefficients from supercritical carbon dioxide flowing in horizontal mini/micro channels. J Heat Transf 2002;124:413–419. [CrossRef]
  • [14] Gnielinski V. New equations for heat and mass transfer in turbulent pipe and channel flow. Int Chem Eng 1976;16:359–367.
  • [15] Petrov NE, Popov VN. Heat transfer and resistance of carbon dioxide cooled in the supercritical region. Thermal Eng 1985;32:131–134.
  • [16] Acosta. R, Muller R, Tobias C. Transno_rt u. ro– cesses in narrow (capillary) channels. AIChE J 1985;31:473–482. [CrossRef]
  • [17] Pettersen J, Rieberer R, Leister A. Heat transfer and pressure drop characteristics of supercritical carbon dioxide in microchannel tubes under cooling. Proc. 4th IIR–Gustav Lorentzen Conference on Natural Working Fluids in Purdue, Joint Conference of the International Institute of Refrigeration. Section B and E, 2000. p. 99–106.
  • [18] Liao SM, Zhao TS. Measurements of heat transfer coefficients from supercritical carbon dioxide flowing in horizontal mini/micro channels. J Heat Transf 2002;124:413–420. [CrossRef] [19] Dang C, Hihara E. In–tube cooling of supercritical carbon dioxide: Part 1. Experimental measurement. Int J refrigeration 2004;27:736–747. [CrossRef]
  • [20] Küçükakça Meral Z, Parlak N. Experimental research and CFD simulation of cross flow microchannel heat exchanger. J Therm Eng 2021;7:270–283. [CrossRef]
  • [21] Vinayak Gaikwad, Suhas Mohite, Swapnil Shinde, Mahesh Dherange, Enhancement in thermo–hydraulic performance of microchannel heat sink with secondary flows of leaf venation pattern. J Therm Eng 2020;6:677–696. [CrossRef]
  • [22] Ozdemir MR, Sözbir OR. A review of single–phase and two–phase pressure drop characteristics and flow boiling instabilities in microchannels. J Therm Eng 2018;4:2451–2463. [CrossRef]
  • [23] Cebi A, Celen A, Donmez A, Karakoyun Y, Celen P, Cellek MS, et al. A review of flow boiling in mini and microchannels for enhanced geometries. J Therm Eng 2018;4:2037–2074. [CrossRef]

Measurements of heat transfer coefficients from supercritical fluid flowing in vertical mini channels with constant wall temperature

Yıl 2023, , 901 - 911, 04.08.2023
https://doi.org/10.18186/thermal.1329554

Öz

Currently, efficient heat transmission for compact electronic elements is an essential matter. It needs a heat sink with a liquid cooling scheme that meets these demands as much as feasible. The dimensions of 50.8 × 40.6 × 5.5 mm were adopted for features of heat transfer as well as
the fluid flow of supercritical CO2 in the heat sink in this study. The adopted pressures, tem-peratures, and mass velocity ranges were 7.5 to 12 MPa, 35 to 50oC, and 100 to 500 Kg/m2s,
respectively, wherein the CO2 cooled under these conditions. The factors of heat transfer, the pressure at levels of local as well as medium degree were determined under these conditions.
The medium temperature of CO2 in the adjacent significant point area increased, the pressure
decreased and the medium temperature movement factor augmented dramatically. It was also noted that the medium temperature movement factor peaked at the pseudo-critical tempera-ture. However, the maximum temperature movement factor declined increased pressure. Fur-thermore, in contrast to the pressure factor, it was revealed that mass velocity and temperature movement factor had a direct relationship. Using the obtained data, a novel correlation mech-
anism for limited convection of super-critical CO2 in regular multi-port micro tubes based on chilling conditions was constructed using the obtained coefficients in this study.

Kaynakça

  • [1] Al Tae’y KA, Jaddoa AA, ABD HS. A loop thermosyphon for liquid cooled minichannels heat sink with pulsate surface heat flux. J Therm Eng 2021;7:1030–1038. [CrossRef]
  • [2] Bilalov TR, Zakharov AA, Jaddoa AA, Gumerov FM, Le Neindre B. Treatment of different types of cotton fabrics by ammonium palmitate in a supercritical CO2 environment. J Supercrit Fluids 2017;130:47–55. [CrossRef]
  • [3] Jaddoa AA. Convection heat transfer analysis with flow resistance for mini–helically coiled tubes at supercritical pressures experimentally. Int J Heat Technol 2021;39:817–824. [CrossRef]
  • [4] Jaddoa AA. Convection heat transfer performance for the Scf–Co2 media in mini–tube with fins experimentally. J Eng Sci Technol 2021;16:3407–3420.
  • [5] Kkihlefa BJ, Jaddoa AA, Reja AH. Experimental investigation of heat transfer features for vertical tube using porous media and Carbon dioxide. J Mech Eng Res Develop 2021;44:188–195. [6] Huai X, Koyama S. Heat transfer characteristics of supercritical CO2 flow in small–channeled structures. Exp Heat Trans 2007;20:19–33. [CrossRef]
  • [7] Huaia XL, Koyama S, Zhao TS. An experimental study of flow and heat transfer of supercritical carbon dioxide in multi–port mini channels under cooling conditions. Chem Eng Sci 2005;60:3337–3345. [CrossRef]
  • [8] Petukhov BS. Heat transfer and friction in turbulent pipe flow with variable physical properties. Adv Heat Transf 1970;6:504–564. [CrossRef]
  • [9] Hall WB. Heat transfer near the critical point. Adv Heat Transf 1971;7:1–86. [CrossRef]
  • [10] Polyakov AF. Heat transfer under supercritical pressures. Adv Heat Transf 1991;21:1–53. [CrossRef]
  • [11] Afshin JG, Asadi A. Improved forced convective heat transfer correlations for liquids in the near–critical region. AIAA J 1985;24:2030–2037. [CrossRef]
  • [12] Pitla S, Groll S, Eckhard A, Ramadhyani S. New correlation for the heat transfer coefficient during in–tube cooling of turbulent supercritical carbon dioxide. Int J Refrig 2002;25:887–895. [CrossRef]
  • [13] Liao SM, Zhao TS. Measurements of heat transfer coefficients from supercritical carbon dioxide flowing in horizontal mini/micro channels. J Heat Transf 2002;124:413–419. [CrossRef]
  • [14] Gnielinski V. New equations for heat and mass transfer in turbulent pipe and channel flow. Int Chem Eng 1976;16:359–367.
  • [15] Petrov NE, Popov VN. Heat transfer and resistance of carbon dioxide cooled in the supercritical region. Thermal Eng 1985;32:131–134.
  • [16] Acosta. R, Muller R, Tobias C. Transno_rt u. ro– cesses in narrow (capillary) channels. AIChE J 1985;31:473–482. [CrossRef]
  • [17] Pettersen J, Rieberer R, Leister A. Heat transfer and pressure drop characteristics of supercritical carbon dioxide in microchannel tubes under cooling. Proc. 4th IIR–Gustav Lorentzen Conference on Natural Working Fluids in Purdue, Joint Conference of the International Institute of Refrigeration. Section B and E, 2000. p. 99–106.
  • [18] Liao SM, Zhao TS. Measurements of heat transfer coefficients from supercritical carbon dioxide flowing in horizontal mini/micro channels. J Heat Transf 2002;124:413–420. [CrossRef] [19] Dang C, Hihara E. In–tube cooling of supercritical carbon dioxide: Part 1. Experimental measurement. Int J refrigeration 2004;27:736–747. [CrossRef]
  • [20] Küçükakça Meral Z, Parlak N. Experimental research and CFD simulation of cross flow microchannel heat exchanger. J Therm Eng 2021;7:270–283. [CrossRef]
  • [21] Vinayak Gaikwad, Suhas Mohite, Swapnil Shinde, Mahesh Dherange, Enhancement in thermo–hydraulic performance of microchannel heat sink with secondary flows of leaf venation pattern. J Therm Eng 2020;6:677–696. [CrossRef]
  • [22] Ozdemir MR, Sözbir OR. A review of single–phase and two–phase pressure drop characteristics and flow boiling instabilities in microchannels. J Therm Eng 2018;4:2451–2463. [CrossRef]
  • [23] Cebi A, Celen A, Donmez A, Karakoyun Y, Celen P, Cellek MS, et al. A review of flow boiling in mini and microchannels for enhanced geometries. J Therm Eng 2018;4:2037–2074. [CrossRef]
Toplam 21 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Termodinamik ve İstatistiksel Fizik
Bölüm Makaleler
Yazarlar

Ameer Abed Jaddoa Bu kişi benim 0000-0001-5158-1827

Yayımlanma Tarihi 4 Ağustos 2023
Gönderilme Tarihi 6 Ekim 2021
Yayımlandığı Sayı Yıl 2023

Kaynak Göster

APA Jaddoa, A. A. (2023). Measurements of heat transfer coefficients from supercritical fluid flowing in vertical mini channels with constant wall temperature. Journal of Thermal Engineering, 9(4), 901-911. https://doi.org/10.18186/thermal.1329554
AMA Jaddoa AA. Measurements of heat transfer coefficients from supercritical fluid flowing in vertical mini channels with constant wall temperature. Journal of Thermal Engineering. Ağustos 2023;9(4):901-911. doi:10.18186/thermal.1329554
Chicago Jaddoa, Ameer Abed. “Measurements of Heat Transfer Coefficients from Supercritical Fluid Flowing in Vertical Mini Channels With Constant Wall Temperature”. Journal of Thermal Engineering 9, sy. 4 (Ağustos 2023): 901-11. https://doi.org/10.18186/thermal.1329554.
EndNote Jaddoa AA (01 Ağustos 2023) Measurements of heat transfer coefficients from supercritical fluid flowing in vertical mini channels with constant wall temperature. Journal of Thermal Engineering 9 4 901–911.
IEEE A. A. Jaddoa, “Measurements of heat transfer coefficients from supercritical fluid flowing in vertical mini channels with constant wall temperature”, Journal of Thermal Engineering, c. 9, sy. 4, ss. 901–911, 2023, doi: 10.18186/thermal.1329554.
ISNAD Jaddoa, Ameer Abed. “Measurements of Heat Transfer Coefficients from Supercritical Fluid Flowing in Vertical Mini Channels With Constant Wall Temperature”. Journal of Thermal Engineering 9/4 (Ağustos 2023), 901-911. https://doi.org/10.18186/thermal.1329554.
JAMA Jaddoa AA. Measurements of heat transfer coefficients from supercritical fluid flowing in vertical mini channels with constant wall temperature. Journal of Thermal Engineering. 2023;9:901–911.
MLA Jaddoa, Ameer Abed. “Measurements of Heat Transfer Coefficients from Supercritical Fluid Flowing in Vertical Mini Channels With Constant Wall Temperature”. Journal of Thermal Engineering, c. 9, sy. 4, 2023, ss. 901-1, doi:10.18186/thermal.1329554.
Vancouver Jaddoa AA. Measurements of heat transfer coefficients from supercritical fluid flowing in vertical mini channels with constant wall temperature. Journal of Thermal Engineering. 2023;9(4):901-1.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering