Araştırma Makalesi
BibTex RIS Kaynak Göster
Yıl 2024, Cilt: 10 Sayı: 2, 404 - 429, 22.03.2024
https://doi.org/10.18186/thermal.1456643

Öz

Kaynakça

  • [1] Nawale PR, Mule AA, Powar SB, Kothmire PP. Enhancement technique of heat transfer using inserted twisted tape. J Therm Engineer 2021;7:1614–1627. [CrossRef]
  • [2] Badiger S, Katti VV, Anil TR. Experimental investigation of heat transfer characteristics of an inverse diffusion flame in a coaxial tube burner for with and without swirl. J Therm Engineer 2022;8:67–77. [CrossRef]
  • [3] Senveli A, Dizman T, Celen A. Cfd Analysis of smoke and temperature control system of an indoor parking lot with jet fans. J Therm Engineer 2015;1:116–130. [CrossRef]
  • [4] Cherrared D. Numerical simulation of film cooling a turbine blade through a row of holes. J Therm Engineer 2017;3:1110–1120. [CrossRef]
  • [5] Dash SC, Singh N. Study of, axisymmetric nature in 3 d swirling flow in a cylindrical annulus with a top rotating lid under the influence of axial temperature gradient or axial magnetic field. J Therm Engineer 2017;3:1588–1606. [CrossRef]
  • [6] Kravtsov ZD, Sharaborin DK, Dulin VM. Swirl effect on flow structure and mixing in a turbulent jet. J Physics: Conference Series 2018;012001. [CrossRef]
  • [7] Meslem A, Nastase I, Abed-Meraim K. Experimental investigation of a lobed jet flow mixing performance. J Eng Phys Thermophys 2008;81:106–111. [CrossRef]
  • [8] Medaouar W, Loukarfi L, Braikia M, Khelil A, Naji H. Experimental and numerical study of a turbulent multiple jets issued from lobed diffusers. J Appl Fluid Mech 2019;12:729–742. [CrossRef]
  • [9] Felli M, Falchi M, Pereira F. Distance effect on the behavior of an impinging swirling jet by PIV and flow visualization. Exp Fluids 2009; 48:197–209. [CrossRef]
  • [10] Lee SG. Experimental investigation of mixing enhanced swirl flows. J Mech Sci Technol 2008;22:2509–2515. [CrossRef]
  • [11] Meslem A, Nastase I, Allard F. Passive mixing control for innovative air diffusion terminal devices for buildings. Building Environ 2010;45:2679–2688. [CrossRef]
  • [12] Meslem A, Greffet R, Nastase I, Ammar A. Experimental investigation of jets from rectangular six-lobed and round orifices at very low Reynolds number. Meccanica 2014;49:2419–2437. [CrossRef]
  • [13] Bennia A, Loukarfi L, Braikia M, Khelil A, Naji H. Etude expérimentale d’un jet turbulent à diffuseur muni de lobes : Application au confort dans les locaux à usage d’habitation. Nature & Technologie. A Sciences fondamentales and Engineering 2015;13:54–58.
  • [14] Nuntadusit C, Waehayee M, Bunyajitradulya A, Eiam Saard S. Heat transfer enhancement by multiple swirling impinging jets with twisted-tape swirl generators. Int Comm Heat Mass Transf 2012;39:102–107. [CrossRef]
  • [15] Maurel S, Rey C, Solliec C. Comparison modeling experience in the case of a turbulent air jet impinging a plate planes. School of Mines Nantes. XVth French Congress of Mechanics Nancy, 3 to 7 2001.
  • [16] Alekseenko SV, Bilsky AV, Dulin VM, Markovich DM. Experimental study of an impinging jet with different swirl rates. Int J Heat Fluid Flow 2007;28:1340–1359. [CrossRef]
  • [17] Xu L, Zhao X, Xi L, Ma Y, Gao J, Xi L, et al. Large-eddy simulation study of flow and heat transfer in swirling and non-swirling impinging jets on a semi-cylinder concave target. Appl Sci 2021;11:7167. [CrossRef]
  • [18] Kannan BT. Computation of an axisymmetric jet using OpenFOAM. Procedia Engineer 2015;127:1292–1299. [CrossRef]
  • [19] Nastase I, Meslem A, Vlad I, Colda I. Lobed grilles for high mixing ventilation–An experimental analysis in a full scale model room. Building Environ 2011;46:547–555. [CrossRef]
  • [20] Braikia M, Loukarfi L, Khelil A, Naji H. Improvement of thermal homogenization using multiple swirling jets. Therm Sci 2012;16:239–250. [CrossRef]
  • [21] Khelil A, Naji H, Loukarfi L, Meliani MH, Braikia M. Numerical simulation of the interactions among multiple turbulent swirling jets mounted in unbalanced positions. Appl Math Model 2016;40:3749–3763. [CrossRef]
  • [22] Bragança P, Sodjavi K, Meslem A. Passive control strategy for mixing ventilation in heating and cooling modes using lobed inserts. Energy Procedia 2017;112:232–239. [CrossRef]
  • [23] Depuru Mohan NK, Prakash KR, Panchapakesan NR. Mixing augmentation by multiple lobed jets. Am J Fluid Dynamics 2015;5:55–64.
  • [24] Bennia A, Loukarfi L, Khelil A, Mohamadi S, Braikia M, Naji N. Contribution to the experimental and numerical dynamic study of a turbulent jet issued from lobed diffuser. J Appl Fluid Mech 2016;9:2957–2967. [CrossRef]
  • [25] Boussoufi M, Sabeur-Bendehina A, Ouadha A, Morsli S, El Ganaoui M. Numerical analysis of single and multiple jets. European Physical J Appl Physics 2017;78:34814. [CrossRef]
  • [26] Bagre N, Parekh AD, Pate VK. A CFD investigation of flow separation in an elliptical and circular ranque-hilsch vortex tube. J Therm Engineer 2023;9. [CrossRef]
  • [27] Ravi D, Rajagopal TKR. Numerical investigation on the effect of slit thickness and outlet angle of the bladeless fan for flow optimization using CFD techniques. J Therm Engineer 2023;9. [CrossRef]
  • [28] Menter F. Zonal two equations kw turbulence models for aerodynamic flows. 23rd Fluid Dynamics, Plasmadynamics, and Lasers Conference; 1993. p. 2906. [CrossRef]
  • [29] Menter FR. Two-equation eddy-viscosity turbulence models for engineering applications. AIAA J 1994;32:1598–1605. [CrossRef]
  • [30] Menter FR. Review of the shear-stress transport turbulence model experience from an industrial perspective. Int J Comput Fluid Dynamics 2009;23:305–316. [CrossRef]
  • [31] Hassan M, Mebarek-Oudina F, Faisal A, Ghafar A, Ismail AI. Thermal energy and mass transport of shear thinning fluid under effects of low to high shear rate viscosity. Int J Thermofluids 2022;15:100176. [CrossRef]
  • [32] Laouira H, Mebarek‐Oudina F, Hussein AK, Kolsi L, Merah A, Younis O. Heat transfer inside a horizontal channel with an open trapezoidal enclosure subjected to a heat source of different lengths. Heat Transf 2020;49: 406–423. [CrossRef]
  • [33] Mebarek-Oudina F, Laouira H, Aissa A, Hussein AK, El Ganaoui M. Convection heat transfer analysis in a channel with an open trapezoidal cavity: Heat source locations effect. MATEC Web of Conferences ICOME’19 2020;330:01006. [CrossRef]
  • [34] Gourari S, Mebarek-Oudina F, Makinde OD, Rabhi M. Numerical investigation of gas-liquid two-phase flows in a cylindrical channel. Engineer Fluid Flows Heat Transf Anal 2021;409:39–48. [CrossRef]
  • [35] Mebarek-Oudina F, Laouira H, Hussein AK, Omri M, Abderrahmane A, Kolsi L, et al. Mixed convection inside a duct with an open trapezoidal cavity equipped with two discrete heat sources and moving walls. Mathematics 2022;10:929. [CrossRef]

Thermal and dynamic characterization of a multi-jet system with different geometry diffusers

Yıl 2024, Cilt: 10 Sayı: 2, 404 - 429, 22.03.2024
https://doi.org/10.18186/thermal.1456643

Öz

This paper proposed to use the impinging jets mixing process to improve the quality of residential heating and air conditioning. The main objective is to meet the requirements of occupants in terms of thermal comfort and air quality by proposing an optimal solution for the thermal homogenization improvement in the rooms by changing of the diffusers geometry and their arrangement in the ventilation and air-conditioning devices in blowing systems. This study involves both experimental and numerical studies of a three diffusers configurations composed of four peripheral jet with similar geometries and a central jet with a different geometry. All the configurations consist of four equidistant peripheral swirling jets, only the central jet that makes the difference between them. The configuration 1 includes a swirling central jet, on the other hand a circular central jet for the configuration 2 and finally a lobed central jet for configuration 3. The velocity and temperature distributions of the three configurations are investigated experimentally and numerically. Experimentally, the multifunction thermo-anemometer have been used to measure flow temperature and velocity. The dynamic and temperature features are more radially spread and get better homogeneity in configuration 3 and this is due to the energy distribution on the radial plane, which is relatively better than configuration 1 and configuration 2. The second part deals with numerical predictions of the dynamics and thermal fields of the three configurations considered. The study was realized using a RANS-based turbulence model. The numerical results are in reasonable agreement with our experiments for the three configurations. With this study, detailed information on the structure of the resulting flow is very useful to deepen the understanding of the physics of jet interaction and to validate turbulence models. The turbulence simulation is realized by the k-ω-SST model. This model gives a satisfactorily predicts the axial drop in velocity and temperature over the entire study range, demonstrating its ability to handle the interaction between swirling and lobe jets. Our results show that the geometry of the central diffuser is essential. This allows the axial velocity to decrease faster than configurations 1 and 2. This increases lateral diffusion, resulting in better homogenization.

Kaynakça

  • [1] Nawale PR, Mule AA, Powar SB, Kothmire PP. Enhancement technique of heat transfer using inserted twisted tape. J Therm Engineer 2021;7:1614–1627. [CrossRef]
  • [2] Badiger S, Katti VV, Anil TR. Experimental investigation of heat transfer characteristics of an inverse diffusion flame in a coaxial tube burner for with and without swirl. J Therm Engineer 2022;8:67–77. [CrossRef]
  • [3] Senveli A, Dizman T, Celen A. Cfd Analysis of smoke and temperature control system of an indoor parking lot with jet fans. J Therm Engineer 2015;1:116–130. [CrossRef]
  • [4] Cherrared D. Numerical simulation of film cooling a turbine blade through a row of holes. J Therm Engineer 2017;3:1110–1120. [CrossRef]
  • [5] Dash SC, Singh N. Study of, axisymmetric nature in 3 d swirling flow in a cylindrical annulus with a top rotating lid under the influence of axial temperature gradient or axial magnetic field. J Therm Engineer 2017;3:1588–1606. [CrossRef]
  • [6] Kravtsov ZD, Sharaborin DK, Dulin VM. Swirl effect on flow structure and mixing in a turbulent jet. J Physics: Conference Series 2018;012001. [CrossRef]
  • [7] Meslem A, Nastase I, Abed-Meraim K. Experimental investigation of a lobed jet flow mixing performance. J Eng Phys Thermophys 2008;81:106–111. [CrossRef]
  • [8] Medaouar W, Loukarfi L, Braikia M, Khelil A, Naji H. Experimental and numerical study of a turbulent multiple jets issued from lobed diffusers. J Appl Fluid Mech 2019;12:729–742. [CrossRef]
  • [9] Felli M, Falchi M, Pereira F. Distance effect on the behavior of an impinging swirling jet by PIV and flow visualization. Exp Fluids 2009; 48:197–209. [CrossRef]
  • [10] Lee SG. Experimental investigation of mixing enhanced swirl flows. J Mech Sci Technol 2008;22:2509–2515. [CrossRef]
  • [11] Meslem A, Nastase I, Allard F. Passive mixing control for innovative air diffusion terminal devices for buildings. Building Environ 2010;45:2679–2688. [CrossRef]
  • [12] Meslem A, Greffet R, Nastase I, Ammar A. Experimental investigation of jets from rectangular six-lobed and round orifices at very low Reynolds number. Meccanica 2014;49:2419–2437. [CrossRef]
  • [13] Bennia A, Loukarfi L, Braikia M, Khelil A, Naji H. Etude expérimentale d’un jet turbulent à diffuseur muni de lobes : Application au confort dans les locaux à usage d’habitation. Nature & Technologie. A Sciences fondamentales and Engineering 2015;13:54–58.
  • [14] Nuntadusit C, Waehayee M, Bunyajitradulya A, Eiam Saard S. Heat transfer enhancement by multiple swirling impinging jets with twisted-tape swirl generators. Int Comm Heat Mass Transf 2012;39:102–107. [CrossRef]
  • [15] Maurel S, Rey C, Solliec C. Comparison modeling experience in the case of a turbulent air jet impinging a plate planes. School of Mines Nantes. XVth French Congress of Mechanics Nancy, 3 to 7 2001.
  • [16] Alekseenko SV, Bilsky AV, Dulin VM, Markovich DM. Experimental study of an impinging jet with different swirl rates. Int J Heat Fluid Flow 2007;28:1340–1359. [CrossRef]
  • [17] Xu L, Zhao X, Xi L, Ma Y, Gao J, Xi L, et al. Large-eddy simulation study of flow and heat transfer in swirling and non-swirling impinging jets on a semi-cylinder concave target. Appl Sci 2021;11:7167. [CrossRef]
  • [18] Kannan BT. Computation of an axisymmetric jet using OpenFOAM. Procedia Engineer 2015;127:1292–1299. [CrossRef]
  • [19] Nastase I, Meslem A, Vlad I, Colda I. Lobed grilles for high mixing ventilation–An experimental analysis in a full scale model room. Building Environ 2011;46:547–555. [CrossRef]
  • [20] Braikia M, Loukarfi L, Khelil A, Naji H. Improvement of thermal homogenization using multiple swirling jets. Therm Sci 2012;16:239–250. [CrossRef]
  • [21] Khelil A, Naji H, Loukarfi L, Meliani MH, Braikia M. Numerical simulation of the interactions among multiple turbulent swirling jets mounted in unbalanced positions. Appl Math Model 2016;40:3749–3763. [CrossRef]
  • [22] Bragança P, Sodjavi K, Meslem A. Passive control strategy for mixing ventilation in heating and cooling modes using lobed inserts. Energy Procedia 2017;112:232–239. [CrossRef]
  • [23] Depuru Mohan NK, Prakash KR, Panchapakesan NR. Mixing augmentation by multiple lobed jets. Am J Fluid Dynamics 2015;5:55–64.
  • [24] Bennia A, Loukarfi L, Khelil A, Mohamadi S, Braikia M, Naji N. Contribution to the experimental and numerical dynamic study of a turbulent jet issued from lobed diffuser. J Appl Fluid Mech 2016;9:2957–2967. [CrossRef]
  • [25] Boussoufi M, Sabeur-Bendehina A, Ouadha A, Morsli S, El Ganaoui M. Numerical analysis of single and multiple jets. European Physical J Appl Physics 2017;78:34814. [CrossRef]
  • [26] Bagre N, Parekh AD, Pate VK. A CFD investigation of flow separation in an elliptical and circular ranque-hilsch vortex tube. J Therm Engineer 2023;9. [CrossRef]
  • [27] Ravi D, Rajagopal TKR. Numerical investigation on the effect of slit thickness and outlet angle of the bladeless fan for flow optimization using CFD techniques. J Therm Engineer 2023;9. [CrossRef]
  • [28] Menter F. Zonal two equations kw turbulence models for aerodynamic flows. 23rd Fluid Dynamics, Plasmadynamics, and Lasers Conference; 1993. p. 2906. [CrossRef]
  • [29] Menter FR. Two-equation eddy-viscosity turbulence models for engineering applications. AIAA J 1994;32:1598–1605. [CrossRef]
  • [30] Menter FR. Review of the shear-stress transport turbulence model experience from an industrial perspective. Int J Comput Fluid Dynamics 2009;23:305–316. [CrossRef]
  • [31] Hassan M, Mebarek-Oudina F, Faisal A, Ghafar A, Ismail AI. Thermal energy and mass transport of shear thinning fluid under effects of low to high shear rate viscosity. Int J Thermofluids 2022;15:100176. [CrossRef]
  • [32] Laouira H, Mebarek‐Oudina F, Hussein AK, Kolsi L, Merah A, Younis O. Heat transfer inside a horizontal channel with an open trapezoidal enclosure subjected to a heat source of different lengths. Heat Transf 2020;49: 406–423. [CrossRef]
  • [33] Mebarek-Oudina F, Laouira H, Aissa A, Hussein AK, El Ganaoui M. Convection heat transfer analysis in a channel with an open trapezoidal cavity: Heat source locations effect. MATEC Web of Conferences ICOME’19 2020;330:01006. [CrossRef]
  • [34] Gourari S, Mebarek-Oudina F, Makinde OD, Rabhi M. Numerical investigation of gas-liquid two-phase flows in a cylindrical channel. Engineer Fluid Flows Heat Transf Anal 2021;409:39–48. [CrossRef]
  • [35] Mebarek-Oudina F, Laouira H, Hussein AK, Omri M, Abderrahmane A, Kolsi L, et al. Mixed convection inside a duct with an open trapezoidal cavity equipped with two discrete heat sources and moving walls. Mathematics 2022;10:929. [CrossRef]
Toplam 35 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Termodinamik ve İstatistiksel Fizik
Bölüm Makaleler
Yazarlar

Naas Zahout Bu kişi benim 0000-0002-2362-2086

Mohamed Braikia Bu kişi benim 0009-0003-3351-8156

Ali Khelil Bu kişi benim 0000-0003-2431-2271

Hassane Naji Bu kişi benim 0000-0002-5994-7958

Yayımlanma Tarihi 22 Mart 2024
Gönderilme Tarihi 17 Mart 2023
Yayımlandığı Sayı Yıl 2024 Cilt: 10 Sayı: 2

Kaynak Göster

APA Zahout, N., Braikia, M., Khelil, A., Naji, H. (2024). Thermal and dynamic characterization of a multi-jet system with different geometry diffusers. Journal of Thermal Engineering, 10(2), 404-429. https://doi.org/10.18186/thermal.1456643
AMA Zahout N, Braikia M, Khelil A, Naji H. Thermal and dynamic characterization of a multi-jet system with different geometry diffusers. Journal of Thermal Engineering. Mart 2024;10(2):404-429. doi:10.18186/thermal.1456643
Chicago Zahout, Naas, Mohamed Braikia, Ali Khelil, ve Hassane Naji. “Thermal and Dynamic Characterization of a Multi-Jet System With Different Geometry Diffusers”. Journal of Thermal Engineering 10, sy. 2 (Mart 2024): 404-29. https://doi.org/10.18186/thermal.1456643.
EndNote Zahout N, Braikia M, Khelil A, Naji H (01 Mart 2024) Thermal and dynamic characterization of a multi-jet system with different geometry diffusers. Journal of Thermal Engineering 10 2 404–429.
IEEE N. Zahout, M. Braikia, A. Khelil, ve H. Naji, “Thermal and dynamic characterization of a multi-jet system with different geometry diffusers”, Journal of Thermal Engineering, c. 10, sy. 2, ss. 404–429, 2024, doi: 10.18186/thermal.1456643.
ISNAD Zahout, Naas vd. “Thermal and Dynamic Characterization of a Multi-Jet System With Different Geometry Diffusers”. Journal of Thermal Engineering 10/2 (Mart 2024), 404-429. https://doi.org/10.18186/thermal.1456643.
JAMA Zahout N, Braikia M, Khelil A, Naji H. Thermal and dynamic characterization of a multi-jet system with different geometry diffusers. Journal of Thermal Engineering. 2024;10:404–429.
MLA Zahout, Naas vd. “Thermal and Dynamic Characterization of a Multi-Jet System With Different Geometry Diffusers”. Journal of Thermal Engineering, c. 10, sy. 2, 2024, ss. 404-29, doi:10.18186/thermal.1456643.
Vancouver Zahout N, Braikia M, Khelil A, Naji H. Thermal and dynamic characterization of a multi-jet system with different geometry diffusers. Journal of Thermal Engineering. 2024;10(2):404-29.

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