Numerical investigation on heat transfer enhancement inside a rectangular microchannel with vortex generator using TiO2, Cuo-water nanofluids

Authors

  • Arash Behaeen Department of Mechanical Engineering, Central Tehran Branch, Islamic Azad University
  • Mohammad Nimafar Department of Mechanical Engineering, Central Tehran Branch, Islamic Azad University

DOI:

https://doi.org/10.30564/jmer.v3i1.1568

Abstract

One of the innovative ways to improve heat transfer properties of heat exchangers, is using nanofluids instead of traditional fluids. Due to presence of metal and oxides of metal particles in nanofluids structure, they have better potential in different environments and conditions than conventional fluids and having higher thermal conductivity causes improvements in heat transfer properties. In this research flow of two different nanofluids through a rectangular microchannel consisting of different number of longitudinal vortex generators (lvgs), has been investigated. Simulations conducted under laminar flow boundary condition and for different Reynolds numbers from 100 to 250. Considered volumetric concentration in this paper is 1, 1/6 and 2/3 %. Results showed, nanofluids and the LVGs remarkably enhance the heat transfer rates inside the microchannel. havg improved with increasing the nanoparticles volume concentrations and Reynolds number, whereas the opposite trends observed for pressure drop. havg improved for 4 to 12 and 9 to 18% for TiO2 and CuO nanofluids, respectively for different volume concentrations in simple microchannel. For lvg-enhanced microchannel the amount of improvements is about 9-14 and 5-10% for CuO and TiO2, respectively. Also using vortex generators alone improved havg for 15-25% for different number of lvgs.

Keywords:

Average heat transfer coefficient;Longitudinal vortex generator;Microchannel;Nanofluid

References

[1] Toh, K., X. Chen, and J. Chai, Numerical computation of fluid flow and heat transfer in microchannels. International Journal of Heat and Mass Transfer, 2002. 45(26): p. 5133-5141.

[2] Heris, S.Z., M.N. Esfahany, and S.G. Etemad, Experimental investigation of convective heat transfer of Al2O3/water nanofluid in circular tube. International Journal of Heat and Fluid Flow, 2007. 28(2): p. 203-210.

[3] Bianco, V., et al., Numerical investigation of nanofluids forced convection in circular tubes. Applied Thermal Engineering, 2009. 29(17): p. 3632-3642.

[4] He, Y., et al., Numerical investigation into the convective heat transfer of TiO 2 nanofluids flowing through a straight tube under the laminar flow conditions. Applied Thermal Engineering, 2009. 29(10): p. 1965-1972.

[5] Duangthongsuk, W. and S. Wongwises, An experimental study on the heat transfer performance and pressure drop of TiO2-water nanofluids flowing under a turbulent flow regime. International Journal of Heat and Mass Transfer, 2010. 53(1-3): p. 334-344.

[6] Demir, H., et al., Numerical investigation on the single phase forced convection heat transfer characteristics of TiO2 nanofluids in a double-tube counter flow heat exchanger. International Communications in Heat and Mass Transfer, 2011. 38(2): p. 218-228.

[7] Kalteh, M., et al., Experimental and numerical investigation of nanofluid forced convection inside a wide microchannel heat sink. Applied Thermal Engineering, 2012. 36: p. 260-268.

[8] Lotfi, R., A.M. Rashidi, and A. Amrollahi, Experimental study on the heat transfer enhancement of MWNT-water nanofluid in a shell and tube heat exchanger. International communications in heat and mass transfer, 2012. 39(1): p. 108-111.

[9] Fazeli, S.A., et al., Experimental and numerical investigation of heat transfer in a miniature heat sink utilizing silica nanofluid. Superlattices and Microstructures, 2012. 51(2): p. 247-264.

[10] Nimafar, M., V. Viktorov, and M. Martinelli, Experimental comparative mixing performance of passive micromixers with H-shaped sub-channels. Chemical Engineering Science, 2012. 76: p. 37-44.

[11] Nimafar, M., V. Viktorov, and M. Martinelli, Experimental investigation of split and recombination micromixer in confront with basic T-and O-type micromixers. International Journal of Mechanics and Applications, 2012. 2(5): p. 61-69.

[12] Kabeel, A., T.A. El Maaty, and Y. El Samadony, The effect of using nano-particles on corrugated plate heat exchanger performance. Applied Thermal Engineering, 2013. 52(1): p. 221-229.

[13] Shkarah, A.J., et al., A 3D numerical study of heat transfer in a single-phase micro-channel heat sink using graphene, aluminum and silicon as substrates. International Communications in Heat and Mass Transfer, 2013. 48: p. 108-115.

[14] Vladimir, V. and N. Mohammad, A novel generation of 3D SAR-based passive micromixer: efficient mixing and low pressure drop at a low Reynolds number. Journal of Micromechanics and Microengineering, 2013. 23(5): p. 055023.

[15] Aly, W.I., Numerical study on turbulent heat transfer and pressure drop of nanofluid in coiled tube-in-tube heat exchangers. Energy Conversion and Management, 2014. 79: p. 304-316.

[16] Bianco, V., O. Manca, and S. Nardini, Performance analysis of turbulent convection heat transfer of Al2O3 water-nanofluid in circular tubes at constant wall temperature. Energy, 2014. 77: p. 403-413.

[17] Zhang, J., et al., Experimental study of TiO2–water nanofluid flow and heat transfer characteristics in a multiport minichannel flat tube. International Journal of Heat and Mass Transfer, 2014. 79: p. 628-638.

[18] Tiwari, A.K., et al., Numerical investigation of heat transfer and fluid flow in plate heat exchanger using nanofluids. International Journal of Thermal Sciences, 2014. 85: p. 93-103.

[19] Sarafraz, M. and F. Hormozi, Heat transfer, pressure drop and fouling studies of multi-walled carbon nanotube nano-fluids inside a plate heat exchanger. Experimental Thermal and Fluid Science, 2016. 72: p. 1-11.

[20] Arzani, H.K., et al., Experimental and numerical investigation of thermophysical properties, heat transfer and pressure drop of covalent and noncovalent functionalized graphene nanoplatelet-based water nanofluids in an annular heat exchanger. International Communications in Heat and Mass Transfer, 2015. 68: p. 267-275.

[21] Xia, G., et al., Numerical and experimental analyses of planar micromixer with gaps and baffles based on field synergy principle. International Communications in Heat and Mass Transfer, 2016. 71: p. 188-196.

[22] Sakanova, A., C.C. Keian, and J. Zhao, Performance improvements of microchannel heat sink using wavy channel and nanofluids. International journal of heat and mass transfer, 2015. 89: p. 59-74.

[23] Behrangzade, A. and M.M. Heyhat, The effect of using nano-silver dispersed water based nanofluid as a passive method for energy efficiency enhancement in a plate heat exchanger. Applied Thermal Engineering, 2016. 102: p. 311-317.

[24] Zarringhalam, M., A. Karimipour, and D. Toghraie, Experimental study of the effect of solid volume fraction and Reynolds number on heat transfer coefficient and pressure drop of CuO–water nanofluid. Experimental Thermal and Fluid Science, 2016. 76: p. 342-351.

[25] Ebrahimnia-Bajestan, E., et al., Experimental and numerical investigation of nanofluids heat transfer characteristics for application in solar heat exchangers. International Journal of Heat and Mass Transfer, 2016. 92: p. 1041-1052.

[26] Chen, X., et al., Numerical and experimental investigation on micromixers with serpentine microchannels. International Journal of Heat and Mass Transfer, 2016. 98: p. 131-140.

[27] Sheikholeslami, M., et al., CuOH2O nanofluid hydrothermal analysis in a complex shaped cavity. International Journal of Hydrogen Energy, 2016. 41(40): p. 17837-17845.

[28] Fsadni, A.M., et al., Numerical study on turbulent heat transfer and pressure drop characteristics of a helically coiled hybrid rectangular-circular tube heat exchanger with Al2O3-water nanofluids. Applied Thermal Engineering, 2017. 114: p. 466-483.

[29] Zhang, J., et al., An experimental investigation of heat transfer enhancement in minichannel: Combination of nanofluid and micro fin structure techniques. Experimental Thermal and Fluid Science, 2017. 81: p. 21-32.

[30] Rao, M.S.E., et al., Experimental investigation on forced convective heat transfer coefficient of a nano fluid. Materials Today: Proceedings, 2017. 4(8): p. 8717-8723.

[31] Diao, Y., et al., Experimental investigation of MWCNT–water nanofluids flow and convective heat transfer characteristics in multiport minichannels with smooth/micro-fin surface. Powder Technology, 2017. 305: p. 206-216.

[32] Baheri, S., A. Alizad, and R. Gharraei, Numerical Simulation of non-Newtonian Nanofluids Flow in Passive Injection Micromixers Using Mixture Model. Scientia Iranica, 2017. 24(1): p. 211-222.

[33] Sheikholeslami, M., M. Nimafar, and D. Ganji, Nanofluid heat transfer between two pipes considering Brownian motion using AGM. Alexandria engineering journal, 2017. 56(2): p. 277-283.

[34] Sheikholeslami, M., M. Nimafar, and D.D. Ganji, Analytical approach for the effect of melting heat transfer on nanofluid heat transfer. The European Physical Journal Plus, 2017. 132(9): p. 385.

[35] Fluent, A., "14.5 user's guide.". 2011: Fluent Inc.,lebanon,NH.

[36] Ranz, W. and W.R. Marshall, Evaporation from drops. Chem. Eng. Prog, 1952. 48(3): p. 141-146.

Downloads

Issue

Article Type

Articles