42
D. P. Barai et al.
Ali FM, Yunus MM, Moksin MM, Talib ZA (2010) The effect of volume fraction concentration on
the thermal conductivity and thermal diffusivity of nanofluids: numerical and experimental. Rev
Sci Instrum 81:074901
Ali HM, Ali H, Liaquat H, Maqsood HTB, Nadir MA (2015) Experimental investigation of
convective heat transfer augmentation for car radiator using ZnO-water nanofluids. Energy
84:317–324
Askari S, Koolivand H, Pourkhalil M, Lotfi R, Rashidi A (2017) Investigation of Fe 3 O 4 /Graphene
nanohybrid heat transfer properties: experimental approach. Int Commun Heat Mass 87:30–39
Azimi M, Ommi F (2013) Using nanofluid for heat transfer enhancement in engine cooling process.
J Nano Energy Power Res 2:1–3
Azimi HR, Taheri R (2015) Electrical conductivity of CuO nanofluids. Int J Nano Dimens 6:77–81
Baby TT, Ramaprabhu S (2010) Investigation of thermal and electrical conductivity of graphene
based nanofluids. J Appl Phys 108:124308
Bagheli S, Fadafan HK, Orimi RL, Ghaemi M (2015) Synthesis and experimental investigation of
the electrical conductivity of water based magnetite nanofluids. Powder Technol 274:426–430
Bhanvase BA, Sarode MR, Putterwar LA, Abdullah KA, Deosarkar MP, Sonawane SH (2014)
Intensification of convective heat transfer in water/ethylene glycol based nanofluids containing
TiO 2 nanoparticles. Chem Eng Process 82:123–131
Bhanvase BA, Sayankar SD, Kapre A, Fule PJ, Sonawane SH (2018) Experimental investigation on
intensified convective heat transfer coefficient of water based PANI nanofluid in vertical helical
coiled heat exchanger. Appl Therm Eng 128:134–140
Bozorgan N, Shafahi M (2017) Analysis of gasketed-plate heat exchanger performance using
nanofluid. J Heat Mass Trans Res 4:65–72
Bruggeman DAG (1935a) Berechnung verschiedener physikalischer Konstanten von heterogenen
Substanzen. Ann Phys (Leipzig) 24:636
Bruggeman DAG (1935b) Dielectric constant and conductivity of mixtures of isotropic materials.
Ann Phys (Leipzig) 24:636–679
Chakraborty S (2019) An investigation on the long-term stability of TiO 2 nanofluid. Mater Today
Proc 11:714–718
Chakraborty S, Padhy S (2008) Anomalous electrical conductivity of nanoscale colloidal suspensions. ACS Nano 2:2029–2036
Chieruzzi M, Cerritelli GF, Miliozzi A, Kenny JM (2013) Effect of nanoprticles on heat capacity of
nanofluids based on molten salts as PCM for thermal energy storage. Nanoscale Res Lett 8:448
Choi SUS (1995) Enhancing thermal conductivity of fluids with nanoparticles. ASME Publications
FED-vol. 231/MD 66:99–105
Choi SUS, Yu W, Hull JR, Zhang ZG, Lockwood FE (2001) Nanofluids for vehicle thermal management. In: Proceedings of the 2001 vehicle thermal management systems conference, society
of automotive engineers
Chopkar M, Sudarshan S, Das PK, Manna I (2008) Effect of particle size on thermal conductivity
of nanofluid. Metall. Mater. Trans Metall Mater Trans A 39A:1535–1542
Coelho MF, Rivas MA, Vilao G, Nogueira EM, Iglesias TP (2019) Permittivity and electrical conductivity of copper oxide nanofluid (12 nm) in water at different temperatures. J Chem Thermodyn
132:164–173
Colla L, Marinelli L, Fedele L, Bobbo S, Manca O (2014) Characterization and simulation of the
heat transfer behavior of water-based ZnO nanofluids. J Nanosci Nanotechnol 14:1–11
Crisostomo F, Hjerrild N, Mesgari S, Li Q, Taylor RA (2017) A hybrid PV/T collector using
spectrally selective absorbing nanofluids. Appl Energy 193:1–14
Cruz RCD, Reinshagen J, Oberacker R, Segadães AM, Hoffmann MJ (2005) Electrical conductivity
and stability of concentrated aqueous alumina suspensions. J Colloid Interface Sci 286:579–588
Darvanjooghi MHK, Esfahany MN (2016) Experimental investigation of the effect of nanoparticle
size on thermal conductivity of in-situ prepared silica–ethanol nanofluid. Int Commun Heat Mass
7:148–154
Das SK, Choi SUS, Patel HE (2006) Heat transfer in nanofluids—a review. Heat Transf Eng 27:3–19
D. P. Barai et al.
Ali FM, Yunus MM, Moksin MM, Talib ZA (2010) The effect of volume fraction concentration on
the thermal conductivity and thermal diffusivity of nanofluids: numerical and experimental. Rev
Sci Instrum 81:074901
Ali HM, Ali H, Liaquat H, Maqsood HTB, Nadir MA (2015) Experimental investigation of
convective heat transfer augmentation for car radiator using ZnO-water nanofluids. Energy
84:317–324
Askari S, Koolivand H, Pourkhalil M, Lotfi R, Rashidi A (2017) Investigation of Fe 3 O 4 /Graphene
nanohybrid heat transfer properties: experimental approach. Int Commun Heat Mass 87:30–39
Azimi M, Ommi F (2013) Using nanofluid for heat transfer enhancement in engine cooling process.
J Nano Energy Power Res 2:1–3
Azimi HR, Taheri R (2015) Electrical conductivity of CuO nanofluids. Int J Nano Dimens 6:77–81
Baby TT, Ramaprabhu S (2010) Investigation of thermal and electrical conductivity of graphene
based nanofluids. J Appl Phys 108:124308
Bagheli S, Fadafan HK, Orimi RL, Ghaemi M (2015) Synthesis and experimental investigation of
the electrical conductivity of water based magnetite nanofluids. Powder Technol 274:426–430
Bhanvase BA, Sarode MR, Putterwar LA, Abdullah KA, Deosarkar MP, Sonawane SH (2014)
Intensification of convective heat transfer in water/ethylene glycol based nanofluids containing
TiO 2 nanoparticles. Chem Eng Process 82:123–131
Bhanvase BA, Sayankar SD, Kapre A, Fule PJ, Sonawane SH (2018) Experimental investigation on
intensified convective heat transfer coefficient of water based PANI nanofluid in vertical helical
coiled heat exchanger. Appl Therm Eng 128:134–140
Bozorgan N, Shafahi M (2017) Analysis of gasketed-plate heat exchanger performance using
nanofluid. J Heat Mass Trans Res 4:65–72
Bruggeman DAG (1935a) Berechnung verschiedener physikalischer Konstanten von heterogenen
Substanzen. Ann Phys (Leipzig) 24:636
Bruggeman DAG (1935b) Dielectric constant and conductivity of mixtures of isotropic materials.
Ann Phys (Leipzig) 24:636–679
Chakraborty S (2019) An investigation on the long-term stability of TiO 2 nanofluid. Mater Today
Proc 11:714–718
Chakraborty S, Padhy S (2008) Anomalous electrical conductivity of nanoscale colloidal suspensions. ACS Nano 2:2029–2036
Chieruzzi M, Cerritelli GF, Miliozzi A, Kenny JM (2013) Effect of nanoprticles on heat capacity of
nanofluids based on molten salts as PCM for thermal energy storage. Nanoscale Res Lett 8:448
Choi SUS (1995) Enhancing thermal conductivity of fluids with nanoparticles. ASME Publications
FED-vol. 231/MD 66:99–105
Choi SUS, Yu W, Hull JR, Zhang ZG, Lockwood FE (2001) Nanofluids for vehicle thermal management. In: Proceedings of the 2001 vehicle thermal management systems conference, society
of automotive engineers
Chopkar M, Sudarshan S, Das PK, Manna I (2008) Effect of particle size on thermal conductivity
of nanofluid. Metall. Mater. Trans Metall Mater Trans A 39A:1535–1542
Coelho MF, Rivas MA, Vilao G, Nogueira EM, Iglesias TP (2019) Permittivity and electrical conductivity of copper oxide nanofluid (12 nm) in water at different temperatures. J Chem Thermodyn
132:164–173
Colla L, Marinelli L, Fedele L, Bobbo S, Manca O (2014) Characterization and simulation of the
heat transfer behavior of water-based ZnO nanofluids. J Nanosci Nanotechnol 14:1–11
Crisostomo F, Hjerrild N, Mesgari S, Li Q, Taylor RA (2017) A hybrid PV/T collector using
spectrally selective absorbing nanofluids. Appl Energy 193:1–14
Cruz RCD, Reinshagen J, Oberacker R, Segadães AM, Hoffmann MJ (2005) Electrical conductivity
and stability of concentrated aqueous alumina suspensions. J Colloid Interface Sci 286:579–588
Darvanjooghi MHK, Esfahany MN (2016) Experimental investigation of the effect of nanoparticle
size on thermal conductivity of in-situ prepared silica–ethanol nanofluid. Int Commun Heat Mass
7:148–154
Das SK, Choi SUS, Patel HE (2006) Heat transfer in nanofluids—a review. Heat Transf Eng 27:3–19
