Research Article
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Year 2018, Volume: 4 Issue: 6, 2481 - 2495, 29.09.2018
https://doi.org/10.18186/thermal.465696

Abstract

References

  • [1] Patankar, S. V., Liu, C. H., Sparrow, E. M. (1977). Fully developed flow and heat transfer in ducts having streamwise-periodic variations of cross-sectional area. Journal of Heat Transfer, 99(2), 180-186.
  • [2] Guo, Z., Anand, N. K. (1997). Three-dimensional heat transfer in a channel with a baffle in the entrance region. Numerical Heat Transfer, Part A Applications, 31(1), 21-35.
  • [3] Demartini, L. C., Vielmo, H. A., Möller, S. V. (2004). Numeric and experimental analysis of the turbulent flow through a channel with baffle plates. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 26(2), 153-159.
  • [4] Gajusingh, S. T., Shaikh, N., Siddiqui, K. (2010). Influence of a rectangular baffle on the downstream flow structure. Experimental Thermal and Fluid Science, 34(5), 590-602. [5] Siddiqui, M. K. (2007). Heat transfer augmentation in a heat exchanger tube using a baffle. International Journal of Heat and Fluid Flow, 28(2), 318-328.
  • [6] Karwa, R., Maheshwari, B. K., Karwa, N. (2005). Experimental study of heat transfer enhancement in an asymmetrically heated rectangular duct with perforated baffles. International Communications in Heat and Mass Transfer, 32(1-2), 275-284.
  • [7] Guerroudj, N., Kahalerras, H. (2010). Mixed convection in a channel provided with heated porous blocks of various shapes. Energy conversion and management, 51(3), 505-517.
  • [8] Santos, N. B., de Lemos, M. J. (2006). Flow and heat transfer in a parallel-plate channel with porous and solid baffles. Numerical Heat Transfer, Part A: Applications, 49(5), 471-494.
  • [9] Kumar, A., Kim, M. H. (2015). Convective heat transfer enhancement in solar air channels. Applied Thermal Engineering, 89, 239-261.
  • [10] Sripattanapipat, S., Promvonge, P. (2009). Numerical analysis of laminar heat transfer in a channel with diamond-shaped baffles. International Communications in Heat and Mass Transfer, 36(1), 32-38.
  • [11] Wang, F., Zhang, J., Wang, S. (2012). Investigation on flow and heat transfer characteristics in rectangular channel with drop-shaped pin fins. Propulsion and power research, 1(1), 64-70.
  • [12] Zhang, J. F., He, Y. L., Tao, W. Q. (2009). 3D numerical simulation on shell-and-tube heat exchangers with middle-overlapped helical baffles and continuous baffles–Part I: Numerical model and results of whole heat exchanger with middle-overlapped helical baffles. International Journal of Heat and Mass Transfer, 52(23-24), 5371-5380.
  • [13] Won, S. Y., Burgess, N. K., Peddicord, S., Ligrani, P. M. (2004). Spatially resolved surface heat transfer for parallel rib turbulators with 45 deg orientations including test surface conduction analysis. Journal of heat transfer, 126(2), 193-201.
  • [14] Thianpong, C., Yongsiri, K., Nanan, K., Eiamsa-Ard, S. (2012). Thermal performance evaluation of heat exchangers fitted with twisted-ring turbulators. International Communications in Heat and Mass Transfer, 39(6), 861-868.
  • [15] Bekele, A., Mishra, M., Dutta, S. (2011). Effects of delta-shaped obstacles on the thermal performance of solar air heater. Advances in Mechanical Engineering, 3, 103502.
  • [16] Zhou, G., Ye, Q. (2012). Experimental investigations of thermal and flow characteristics of curved trapezoidal winglet type vortex generators. Applied Thermal Engineering, 37, 241-248.
  • [17] Saini, S. K., Saini, R. P. (2008). Development of correlations for Nusselt number and friction factor for solar air heater with roughened duct having arc-shaped wire as artificial roughness. Solar Energy, 82(12), 1118-1130.
  • [18] Menni, Y., Azzi, A., Zidani, C., Benyoucef, B. (2016). Numerical analysis of turbulent forced-convection flow in a channel with staggered l-shaped baffles. Journal of New Technology and Materials, 6(2), 44-55.
  • [19] Bopche, S. B., Tandale, M. S. (2009). Experimental investigations on heat transfer and frictional characteristics of a turbulator roughened solar air heater duct. International Journal of Heat and Mass Transfer, 52(11-12), 2834-2848.
  • [20] Jedsadaratanachai, W., Jayranaiwachira, N., Promvonge, P. (2015). 3D numerical study on flow structure and heat transfer in a circular tube with V-baffles. Chinese Journal of Chemical Engineering, 23(2), 342-349.
  • [21] Promvonge, P. (2010). Heat transfer and pressure drop in a channel with multiple 60 V-baffles. International Communications in Heat and Mass Transfer, 37(7), 835-840.
  • [22] Chamoli, S., Thakur, N. S. (2016). Correlations for solar air heater duct with V-shaped perforated baffles as roughness elements on absorber plate. International Journal of Sustainable Energy, 35(1), 1-20.
  • [23] Jedsadaratanachai, W., Boonloi, A. (2014). Effects of blockage ratio and pitch ratio on thermal performance in a square channel with 30 double V-baffles. Case Studies in Thermal Engineering, 4, 118-128.
  • [24] Kumar, A., Bhagoria, J. L., Sarviya, R. M. (2008). Heat transfer enhancement in channel of solar air collector by using discrete w-shaped artificial roughened absorber. In 19th National 8th ISHMT-ASME heat and mass transfer conference.
  • [25] Sriromreun, P., Thianpong, C., Promvonge, P. (2012). Experimental and numerical study on heat transfer enhancement in a channel with Z-shaped baffles. International Communications in Heat and Mass Transfer, 39(7), 945-952.
  • [26] B.E. Launder, D.B. Spalding (1974). The numerical computation of turbulent flows. Computer Methods in Applied Mechanics and Engineering 3, 269-289.
  • [27] F. Incropera, P.D. Dewitt (1996). Introduction to heat transfer. 3rd edition John Wiley Sons Inc.
  • [28] Patankar, S. (1980). Numerical heat transfer and fluid flow. CRC press.
  • [29] Leonard, B. P., Mokhtari, S. (1990). ULTRA-SHARP nonoscillatory convection schemes for high-speed steady multidimensional flow.
  • [30] Van Doormaal, J. P., Raithby, G. D. (1984). Enhancements of the SIMPLE method for predicting incompressible fluid flows. Numerical heat transfer, 7(2), 147-163.
  • [31] Fluent, I. N. C. (2006). FLUENT 6.3 user’s guide. Fluent documentation.
  • [32] Pirouz, M. M., Farhadi, M., Sedighi, K., Nemati, H., Fattahi, E. (2011). Lattice Boltzmann simulation of conjugate heat transfer in a rectangular channel with wall-mounted obstacles. Scientia Iranica, 18(2), 213-221.
  • [33] Lin, C. W. (2006). Experimental study of thermal behaviors in a rectangular channel with baffle of pores. International communications in heat and mass transfer, 33(8), 985-992.

CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES

Year 2018, Volume: 4 Issue: 6, 2481 - 2495, 29.09.2018
https://doi.org/10.18186/thermal.465696

Abstract

In this paper, a two-dimensional incompressible flow of a Newtonian
fluid through a horizontal duct of rectangular section, where four flat
rectangular baffle plates were inserted and fixed to the top and bottom walls
in a periodically staggered manner, is examined and analyzed numerically using
the finite volume method by means of commercial CFD software FLUENT 6.3.
Researchers consider this situation as a significant issue in the field of heat
exchangers, for which the fluid flow characterization, heat transfer and skin
friction loss distribution, along with the existence and the extension of
possible re-circulations must be determined. The aspect ratio of channel
width-to-height, channel length-to-hydraulic diameter, baffle
spacing-to-channel height ratio, and blockage ratio of baffle height-to-channel
height are fixed at W/H = 1.321, L/Dh = 5.137, Pi/H = 0.972, and h/H
= 0.547, respectively. The Reynolds-Averaged Navier-Stokes Equations are the
governing flow equations for the problem investigated, with the energy
equation. In particular, flow and temperature fields, dimensionless axial velocity
profiles, skin friction coefficients, local and average Nusselt numbers, and
thermal enhancement factor were presented at constant wall temperature
condition along the upper and lower channel walls. The presence of the baffle
plates in the whole domain analyzed causes a much high skin-friction loss, f/f0
= 10.829-25.412 but also provides a considerable heat transfer increase in the duct,
Nu/Nu0 = 3.623-5.008, depending on the Re values. The enhancement
thermal factor for fluid flowing in the baffled channel with larger flow rate
is found to be higher than that with smaller flow rate. The enhancement thermal
factor augments with the rise of Reynolds number and thus, the highest Reynolds
number value, Re = 32,000, provides maximum thermal performance factor, TEF =
1.783. This indicates that the introducing the flat rectangular baffle plates
into the flow in a staggered arrangement can improve the heat transfer
efficiency inside the channel.

References

  • [1] Patankar, S. V., Liu, C. H., Sparrow, E. M. (1977). Fully developed flow and heat transfer in ducts having streamwise-periodic variations of cross-sectional area. Journal of Heat Transfer, 99(2), 180-186.
  • [2] Guo, Z., Anand, N. K. (1997). Three-dimensional heat transfer in a channel with a baffle in the entrance region. Numerical Heat Transfer, Part A Applications, 31(1), 21-35.
  • [3] Demartini, L. C., Vielmo, H. A., Möller, S. V. (2004). Numeric and experimental analysis of the turbulent flow through a channel with baffle plates. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 26(2), 153-159.
  • [4] Gajusingh, S. T., Shaikh, N., Siddiqui, K. (2010). Influence of a rectangular baffle on the downstream flow structure. Experimental Thermal and Fluid Science, 34(5), 590-602. [5] Siddiqui, M. K. (2007). Heat transfer augmentation in a heat exchanger tube using a baffle. International Journal of Heat and Fluid Flow, 28(2), 318-328.
  • [6] Karwa, R., Maheshwari, B. K., Karwa, N. (2005). Experimental study of heat transfer enhancement in an asymmetrically heated rectangular duct with perforated baffles. International Communications in Heat and Mass Transfer, 32(1-2), 275-284.
  • [7] Guerroudj, N., Kahalerras, H. (2010). Mixed convection in a channel provided with heated porous blocks of various shapes. Energy conversion and management, 51(3), 505-517.
  • [8] Santos, N. B., de Lemos, M. J. (2006). Flow and heat transfer in a parallel-plate channel with porous and solid baffles. Numerical Heat Transfer, Part A: Applications, 49(5), 471-494.
  • [9] Kumar, A., Kim, M. H. (2015). Convective heat transfer enhancement in solar air channels. Applied Thermal Engineering, 89, 239-261.
  • [10] Sripattanapipat, S., Promvonge, P. (2009). Numerical analysis of laminar heat transfer in a channel with diamond-shaped baffles. International Communications in Heat and Mass Transfer, 36(1), 32-38.
  • [11] Wang, F., Zhang, J., Wang, S. (2012). Investigation on flow and heat transfer characteristics in rectangular channel with drop-shaped pin fins. Propulsion and power research, 1(1), 64-70.
  • [12] Zhang, J. F., He, Y. L., Tao, W. Q. (2009). 3D numerical simulation on shell-and-tube heat exchangers with middle-overlapped helical baffles and continuous baffles–Part I: Numerical model and results of whole heat exchanger with middle-overlapped helical baffles. International Journal of Heat and Mass Transfer, 52(23-24), 5371-5380.
  • [13] Won, S. Y., Burgess, N. K., Peddicord, S., Ligrani, P. M. (2004). Spatially resolved surface heat transfer for parallel rib turbulators with 45 deg orientations including test surface conduction analysis. Journal of heat transfer, 126(2), 193-201.
  • [14] Thianpong, C., Yongsiri, K., Nanan, K., Eiamsa-Ard, S. (2012). Thermal performance evaluation of heat exchangers fitted with twisted-ring turbulators. International Communications in Heat and Mass Transfer, 39(6), 861-868.
  • [15] Bekele, A., Mishra, M., Dutta, S. (2011). Effects of delta-shaped obstacles on the thermal performance of solar air heater. Advances in Mechanical Engineering, 3, 103502.
  • [16] Zhou, G., Ye, Q. (2012). Experimental investigations of thermal and flow characteristics of curved trapezoidal winglet type vortex generators. Applied Thermal Engineering, 37, 241-248.
  • [17] Saini, S. K., Saini, R. P. (2008). Development of correlations for Nusselt number and friction factor for solar air heater with roughened duct having arc-shaped wire as artificial roughness. Solar Energy, 82(12), 1118-1130.
  • [18] Menni, Y., Azzi, A., Zidani, C., Benyoucef, B. (2016). Numerical analysis of turbulent forced-convection flow in a channel with staggered l-shaped baffles. Journal of New Technology and Materials, 6(2), 44-55.
  • [19] Bopche, S. B., Tandale, M. S. (2009). Experimental investigations on heat transfer and frictional characteristics of a turbulator roughened solar air heater duct. International Journal of Heat and Mass Transfer, 52(11-12), 2834-2848.
  • [20] Jedsadaratanachai, W., Jayranaiwachira, N., Promvonge, P. (2015). 3D numerical study on flow structure and heat transfer in a circular tube with V-baffles. Chinese Journal of Chemical Engineering, 23(2), 342-349.
  • [21] Promvonge, P. (2010). Heat transfer and pressure drop in a channel with multiple 60 V-baffles. International Communications in Heat and Mass Transfer, 37(7), 835-840.
  • [22] Chamoli, S., Thakur, N. S. (2016). Correlations for solar air heater duct with V-shaped perforated baffles as roughness elements on absorber plate. International Journal of Sustainable Energy, 35(1), 1-20.
  • [23] Jedsadaratanachai, W., Boonloi, A. (2014). Effects of blockage ratio and pitch ratio on thermal performance in a square channel with 30 double V-baffles. Case Studies in Thermal Engineering, 4, 118-128.
  • [24] Kumar, A., Bhagoria, J. L., Sarviya, R. M. (2008). Heat transfer enhancement in channel of solar air collector by using discrete w-shaped artificial roughened absorber. In 19th National 8th ISHMT-ASME heat and mass transfer conference.
  • [25] Sriromreun, P., Thianpong, C., Promvonge, P. (2012). Experimental and numerical study on heat transfer enhancement in a channel with Z-shaped baffles. International Communications in Heat and Mass Transfer, 39(7), 945-952.
  • [26] B.E. Launder, D.B. Spalding (1974). The numerical computation of turbulent flows. Computer Methods in Applied Mechanics and Engineering 3, 269-289.
  • [27] F. Incropera, P.D. Dewitt (1996). Introduction to heat transfer. 3rd edition John Wiley Sons Inc.
  • [28] Patankar, S. (1980). Numerical heat transfer and fluid flow. CRC press.
  • [29] Leonard, B. P., Mokhtari, S. (1990). ULTRA-SHARP nonoscillatory convection schemes for high-speed steady multidimensional flow.
  • [30] Van Doormaal, J. P., Raithby, G. D. (1984). Enhancements of the SIMPLE method for predicting incompressible fluid flows. Numerical heat transfer, 7(2), 147-163.
  • [31] Fluent, I. N. C. (2006). FLUENT 6.3 user’s guide. Fluent documentation.
  • [32] Pirouz, M. M., Farhadi, M., Sedighi, K., Nemati, H., Fattahi, E. (2011). Lattice Boltzmann simulation of conjugate heat transfer in a rectangular channel with wall-mounted obstacles. Scientia Iranica, 18(2), 213-221.
  • [33] Lin, C. W. (2006). Experimental study of thermal behaviors in a rectangular channel with baffle of pores. International communications in heat and mass transfer, 33(8), 985-992.
There are 32 citations in total.

Details

Primary Language English
Journal Section Articles
Authors

Chafika Zidani This is me

Publication Date September 29, 2018
Submission Date August 25, 2017
Published in Issue Year 2018 Volume: 4 Issue: 6

Cite

APA Zidani, C. (2018). CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES. Journal of Thermal Engineering, 4(6), 2481-2495. https://doi.org/10.18186/thermal.465696
AMA Zidani C. CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES. Journal of Thermal Engineering. September 2018;4(6):2481-2495. doi:10.18186/thermal.465696
Chicago Zidani, Chafika. “CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES”. Journal of Thermal Engineering 4, no. 6 (September 2018): 2481-95. https://doi.org/10.18186/thermal.465696.
EndNote Zidani C (September 1, 2018) CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES. Journal of Thermal Engineering 4 6 2481–2495.
IEEE C. Zidani, “CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES”, Journal of Thermal Engineering, vol. 4, no. 6, pp. 2481–2495, 2018, doi: 10.18186/thermal.465696.
ISNAD Zidani, Chafika. “CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES”. Journal of Thermal Engineering 4/6 (September 2018), 2481-2495. https://doi.org/10.18186/thermal.465696.
JAMA Zidani C. CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES. Journal of Thermal Engineering. 2018;4:2481–2495.
MLA Zidani, Chafika. “CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES”. Journal of Thermal Engineering, vol. 4, no. 6, 2018, pp. 2481-95, doi:10.18186/thermal.465696.
Vancouver Zidani C. CFD SIMULATION OF THERMO-AERAULIC FIELDS IN A CHANNEL WITH MULTIPLE BAFFLE PLATES. Journal of Thermal Engineering. 2018;4(6):2481-95.

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