Synthesis and Characterization of Nanofluids …
47
Prasher R, Bhattacharya P, Phelan PE (2005) Brownian-motion-based convective–conductive model
for the effective thermal conductivity of nanofluids. J Heat Trans 128:588–595
Qin C, Lee BJ (2018) Effect of particle size distribution on optical property of nanofluids and DASC
performance. Korean Soc Mech Eng 4:392–393
Roberts NA, Walker DG (2010) Convective performance of nanofluids in commercial electronics
cooling systems. Appl Therm Eng 30:2499–2504
Rusconi R, Williams WC, Buongiorno J, Piazza R, Hu LW (2007) Numerical analysis of convective
instabilities in a transient short-hot-wire setup for measurement of liquid thermal conductivity.
Int J Thermophys 28:1131–1146
Sarojini KGK, Manoj SV, Singh PK, Pradeep T, Das SK (2013) Electrical conductivity of ceramic
and metallic nanofluids. Colloids Surf Physicochem Eng Asp 417:39–46
Saterlie M, Sahin H, Kavlicoglu B, Liu Y, Graeve O (2011) Particle size effects in the thermal
conductivity enhancement of copper-based nanofluids. Nanoscale Res Lett 6:217
Schramm LL, Stasiuk EN, Marangoni DG (2003) Surfactants and their applications. Ann Rep
Program Chem Sect 99:3–48
Selvakumar P, Suresh S (2012) Convective performance of CuO/water nanofluid in an electronic
heat sink. Exp Therm Fluid Sci 40:57–63
Shen LP, Wang H, Dong M, Ma ZC, Wang HB (2012) Solvothermal synthesis and electrical
conductivity model for the zinc oxide-insulated oil nanofluid. Phys Lett A 376:1053–1057
Shoghl SN, Jamali J, Moraveji MK (2016) Electrical conductivity, viscosity, and density of different
nanofluids: an experimental study. Exp Therm Fluid Sci 74:339–346
Sidik NAC, Yazid MNAWM, Mamat R (2017) Recent advancement of nanofluids in engine cooling
system. Renew Sust Energy Rev 75:137–144
Sigmund WM, Bell NS, Bergstrom (2000) Novel powder-processing methods for advanced
ceramics. J Am Ceram Soc 83:1557–1574
Sikadar S, Basu S, Ganguly S (2011) Investigation of electrical conductivity of titanium dioxide
nanofluids. Int J Nanoparticles 4: 336–349
Silambarasan M, Manikandan S, Rajan KS (2012) Viscosity and thermal conductivity of dispersions
of sub-micron TiO 2 particles in water prepared by stirred bead milling and ultrasonication. Int J
Heat Mass Transf 55:7991–8002
Sohel Murshed SM, Nieto de Castro CA (2011) Contribution of Brownian motion in thermal
conductivity of nanofluids. In: Proceedings of the world congress on engineering, vol III. London,
UK
Sohel MR, Khaleduzzaman SS, Saidur R, Hepbasli A, Sabri MFM, Mahbubul IM (2014) An experimental investigation of heat transfer enhancement of a minichannel heat sink using Al 2 O 3 –H 2 O
nanofluid. Int J Heat Mass Transf 74:164–172
Sokhansefat T, Kasaeian AB, Kowsary F (2014) Heat transfer enhancement in parabolic trough
collector tube using Al 2 O 3 /synthetic oil nanofluid. Renew Sust Energy Rev 33:636–644
Suganthi KS, Rajan KS (2012) Temperature induced changes in ZnO-water nanofluid: zeta potential,
size distribution and viscosity profiles. Int J Heat Mass Trasnf 55:7969–7980
Suganthi KS, Parthasarathy M, Rajan KS (2013) Liquid-layering induced, temperature-dependent
thermal conductivity enhancement in ZnO–propylene glycol nanofluids. Chem Phys Lett 561–
562:120–124
Suganthi KS, Leela Vinodhan V, Rajan KS (2014) Heat transfer performance and transport properties of ZnO-ethylene glycol and ZnO–ethylene glycol–water nanofluid coolants. Appl Energy
135:548–559
Sundar LS, Singh MK, Sousa ACM (2013) Investigation of thermal conductivity and viscosity of
Fe 3 O 4 nanofluid for heat transfer applications. Int Commun Heat Mass 44:7–14
Syam Sumdar L, Singh MK, Ferro MC, Sousa ACM (2017) Experimental investigation of the
thermal transport properties of graphene oxide/Co 3 O 4 hybrid nanofluids. Int Commun Heat Mass
84:1–10
Teng T, Hung Y, Teng T, Mo H, Hsu H (2010) The effect of alumina/water nanofluid particle size
on thermal conductivity. Appl Therm Eng 30:2213–2218
47
Prasher R, Bhattacharya P, Phelan PE (2005) Brownian-motion-based convective–conductive model
for the effective thermal conductivity of nanofluids. J Heat Trans 128:588–595
Qin C, Lee BJ (2018) Effect of particle size distribution on optical property of nanofluids and DASC
performance. Korean Soc Mech Eng 4:392–393
Roberts NA, Walker DG (2010) Convective performance of nanofluids in commercial electronics
cooling systems. Appl Therm Eng 30:2499–2504
Rusconi R, Williams WC, Buongiorno J, Piazza R, Hu LW (2007) Numerical analysis of convective
instabilities in a transient short-hot-wire setup for measurement of liquid thermal conductivity.
Int J Thermophys 28:1131–1146
Sarojini KGK, Manoj SV, Singh PK, Pradeep T, Das SK (2013) Electrical conductivity of ceramic
and metallic nanofluids. Colloids Surf Physicochem Eng Asp 417:39–46
Saterlie M, Sahin H, Kavlicoglu B, Liu Y, Graeve O (2011) Particle size effects in the thermal
conductivity enhancement of copper-based nanofluids. Nanoscale Res Lett 6:217
Schramm LL, Stasiuk EN, Marangoni DG (2003) Surfactants and their applications. Ann Rep
Program Chem Sect 99:3–48
Selvakumar P, Suresh S (2012) Convective performance of CuO/water nanofluid in an electronic
heat sink. Exp Therm Fluid Sci 40:57–63
Shen LP, Wang H, Dong M, Ma ZC, Wang HB (2012) Solvothermal synthesis and electrical
conductivity model for the zinc oxide-insulated oil nanofluid. Phys Lett A 376:1053–1057
Shoghl SN, Jamali J, Moraveji MK (2016) Electrical conductivity, viscosity, and density of different
nanofluids: an experimental study. Exp Therm Fluid Sci 74:339–346
Sidik NAC, Yazid MNAWM, Mamat R (2017) Recent advancement of nanofluids in engine cooling
system. Renew Sust Energy Rev 75:137–144
Sigmund WM, Bell NS, Bergstrom (2000) Novel powder-processing methods for advanced
ceramics. J Am Ceram Soc 83:1557–1574
Sikadar S, Basu S, Ganguly S (2011) Investigation of electrical conductivity of titanium dioxide
nanofluids. Int J Nanoparticles 4: 336–349
Silambarasan M, Manikandan S, Rajan KS (2012) Viscosity and thermal conductivity of dispersions
of sub-micron TiO 2 particles in water prepared by stirred bead milling and ultrasonication. Int J
Heat Mass Transf 55:7991–8002
Sohel Murshed SM, Nieto de Castro CA (2011) Contribution of Brownian motion in thermal
conductivity of nanofluids. In: Proceedings of the world congress on engineering, vol III. London,
UK
Sohel MR, Khaleduzzaman SS, Saidur R, Hepbasli A, Sabri MFM, Mahbubul IM (2014) An experimental investigation of heat transfer enhancement of a minichannel heat sink using Al 2 O 3 –H 2 O
nanofluid. Int J Heat Mass Transf 74:164–172
Sokhansefat T, Kasaeian AB, Kowsary F (2014) Heat transfer enhancement in parabolic trough
collector tube using Al 2 O 3 /synthetic oil nanofluid. Renew Sust Energy Rev 33:636–644
Suganthi KS, Rajan KS (2012) Temperature induced changes in ZnO-water nanofluid: zeta potential,
size distribution and viscosity profiles. Int J Heat Mass Trasnf 55:7969–7980
Suganthi KS, Parthasarathy M, Rajan KS (2013) Liquid-layering induced, temperature-dependent
thermal conductivity enhancement in ZnO–propylene glycol nanofluids. Chem Phys Lett 561–
562:120–124
Suganthi KS, Leela Vinodhan V, Rajan KS (2014) Heat transfer performance and transport properties of ZnO-ethylene glycol and ZnO–ethylene glycol–water nanofluid coolants. Appl Energy
135:548–559
Sundar LS, Singh MK, Sousa ACM (2013) Investigation of thermal conductivity and viscosity of
Fe 3 O 4 nanofluid for heat transfer applications. Int Commun Heat Mass 44:7–14
Syam Sumdar L, Singh MK, Ferro MC, Sousa ACM (2017) Experimental investigation of the
thermal transport properties of graphene oxide/Co 3 O 4 hybrid nanofluids. Int Commun Heat Mass
84:1–10
Teng T, Hung Y, Teng T, Mo H, Hsu H (2010) The effect of alumina/water nanofluid particle size
on thermal conductivity. Appl Therm Eng 30:2213–2218
