[1]
Nor Azwadi Che Sidik, H.A. Mohammed, A review on preparation methods and challenges of nanofluids, Int. Communications in Heat and Mass Transfer, Vol. 54, (2014), Pp. 115-125.
DOI: 10.1016/j.icheatmasstransfer.2014.03.002
Google Scholar
[2]
Yujin Hwang et al, Production and dispersion stability of nanoparticles in nanofluids, Powder Technology, Vol. 186 (2), (2008), pp.145-153.
Google Scholar
[3]
XuanY, LiQ, Heat transfer enhancement of nanofluids, International Journal of Heat Fluid Flow, (2000), Vol. 21, pp.58-64.
Google Scholar
[4]
Sher Bahadar Khan et al, Copper Oxide Based Polymer Nanohybrid for Chemical Sensor Applications, Int. Journal of Electro chemical Science, Vol. 7, (2012), pp.10965-10975.
Google Scholar
[5]
Asama. N. Naje et al, Preparation and Characterization of SnO2 Nanoparticles, Int. Journal of Innovative Research in Science, Engg. and Tech., Vol. 2, Issue 12, (2013), pp.7068-7072.
Google Scholar
[6]
N. Selvi and S. Sankar, Effect of Shells ZnO; SiO2 on SnO2 Hybrid Core-Shell Nanospheres and their Structural, Morphological and Magnetic Properties, International Journal of Chemical Technology Research, Vol. 6, No. 14, (2014), pp.5665-5671.
DOI: 10.1016/j.spmi.2014.10.015
Google Scholar
[7]
Gaffar G. Momin, Experimental Investigation of Mixed Convection with Water-Al2O3 & Hybrid Nanofluid in Inclined Tube for Laminar Flow, International Journal of Scientific & Technology Research, Vol. 2 (12), (2013), pp.195-201.
Google Scholar
[8]
XieH, Wang J, XiT, LiuY, Wu Q, Thermal conductivity enhancement of suspensions containing nano sized alumina particles, J. of Applied Phy., Vol. 91, (2002), pp.4568-4572.
DOI: 10.1063/1.1454184
Google Scholar
[9]
S. Nallusamy, A. Manoj Babu, Investigation on Carbon Nanotubes over review on other Heat Transfer Nano Fluids, International Journal Applied Engineering Research, Vol. 10(62), (2015), pp.112-117.
Google Scholar
[10]
Das SK, Putra N, ThiesenP, RoetzelW, Temperature dependence of thermal conductivity enhancement for nano fluids, ASME Journal of Heat Transfer, Vol. 125, (2003), pp.567-574.
DOI: 10.1115/1.1571080
Google Scholar
[11]
K. Rohini Priya, K.S. Suganthi, K.S. Rajan, Transport properties of ultra-low concentration CuO–water nanofluids containing non-spherical nanoparticles, International Journal of Heat Mass Transfer, Vol. 55 (17), (2012), pp.4734-4743.
DOI: 10.1016/j.ijheatmasstransfer.2012.04.035
Google Scholar
[12]
Patel HE, Das SK, Thermal conductivities of naked and monolayer protected metal nano particle based nanofluids: manifestation of anomalous enhancement & chemical effects, Journal of Applied Physics, Vol. 83, (2003), pp.2931-2933.
DOI: 10.1063/1.1602578
Google Scholar
[13]
Wei-Chiang Wei et al, Effect of nanofluid concentration on heat pipe thermal performance, IASME Transactions, Vol. 2 (8), (2005), pp.1432-1439.
Google Scholar
[14]
Shung-Wen Kang, Wei-Chiang Wei, Sheng-Hong Tsai, Shih-Yu. Yang, Experimental investigation of silver nano-fluid on heat pipe thermal performance, Journal of Applied Thermal Engineering, Vol. 26 (17), (2006), pp.2377-2382.
DOI: 10.1016/j.applthermaleng.2006.02.020
Google Scholar
[15]
Dongxiao Han et al, Thermal properties of carbon black aqueous nanofluids for solar absorption, Nanoscale Research Letters, Vol. 6, (2011), p.457.
Google Scholar
[16]
Wang BX, Zhou LP, Peng X F, A fractal model for predicting the effective thermal conductivity of liquid with suspension of nanoparticles, International Journal of Heat and Mass Transfer, Vol. 46, (2003), pp.2665-2672.
DOI: 10.1016/s0017-9310(03)00016-4
Google Scholar
[17]
D. Wen Y. Ding, Experimental investigation into convective heat transfer of nanofluids at the entrance region under laminar flow conds., International Journal of Heat and Mass Transfer, Vol. 47, (2004), pp.5181-88.
DOI: 10.1016/j.ijheatmasstransfer.2004.07.012
Google Scholar