-
1
-
-
0037394035
-
Aggregation structure and thermal conductivity of nanofluids
-
Xuan Y.M., Li Q., and Hu W.F. Aggregation structure and thermal conductivity of nanofluids. AIChE J. 49 (2003) 1038
-
(2003)
AIChE J.
, vol.49
, pp. 1038
-
-
Xuan, Y.M.1
Li, Q.2
Hu, W.F.3
-
3
-
-
0032825295
-
Measuring thermal conductivity of fluids containing oxide nanoparticles
-
Lee S., Choi S.U.S., Li S., and Eastman J.A. Measuring thermal conductivity of fluids containing oxide nanoparticles. J. Heat Transfer 121 (1999) 280
-
(1999)
J. Heat Transfer
, vol.121
, pp. 280
-
-
Lee, S.1
Choi, S.U.S.2
Li, S.3
Eastman, J.A.4
-
6
-
-
34447524065
-
Thermal conductivity of metal-oxide nanofluids: particle size dependence and effect of laser irradiation.
-
Kim S.H., Choi S.R., and Kim D.S. Thermal conductivity of metal-oxide nanofluids: particle size dependence and effect of laser irradiation. ASME J. Heat Transfer 129 (2007) 298
-
(2007)
ASME J. Heat Transfer
, vol.129
, pp. 298
-
-
Kim, S.H.1
Choi, S.R.2
Kim, D.S.3
-
8
-
-
0036537378
-
Thermal conductivity enhancement of suspensions containing nanosized alumina particles
-
Xie H.Q., Wang J.C., Xi T.G., Liu Y., Ai F., and Wu Q.R. Thermal conductivity enhancement of suspensions containing nanosized alumina particles. J. Appl. Phys. 91 (2002) 4568
-
(2002)
J. Appl. Phys.
, vol.91
, pp. 4568
-
-
Xie, H.Q.1
Wang, J.C.2
Xi, T.G.3
Liu, Y.4
Ai, F.5
Wu, Q.R.6
-
9
-
-
20444450512
-
Study of the enhanced thermal conductivity of Fe nanofluids
-
Hong T.K., Yang H.S., and Choi C.J. Study of the enhanced thermal conductivity of Fe nanofluids. J. Appl. Phys. 97 (2005) 064311
-
(2005)
J. Appl. Phys.
, vol.97
, pp. 064311
-
-
Hong, T.K.1
Yang, H.S.2
Choi, C.J.3
-
10
-
-
29144520228
-
Short hot wire technique for measuring thermal conductivity and thermal diffusivity of various materials
-
Xie H.Q., Gu H., Fujii M., and Zhang X. Short hot wire technique for measuring thermal conductivity and thermal diffusivity of various materials. Meas. Sci. Technol. 17 (2006) 208
-
(2006)
Meas. Sci. Technol.
, vol.17
, pp. 208
-
-
Xie, H.Q.1
Gu, H.2
Fujii, M.3
Zhang, X.4
-
11
-
-
33747046393
-
Enhancement of thermal conductivity with Cu for nanofluids using chemical reduction method
-
Liu M.S., Lin M.C.C., Tsai C.Y., and Wang C.C. Enhancement of thermal conductivity with Cu for nanofluids using chemical reduction method. Int. J. Heat Mass Transfer 49 (2006) 3028
-
(2006)
Int. J. Heat Mass Transfer
, vol.49
, pp. 3028
-
-
Liu, M.S.1
Lin, M.C.C.2
Tsai, C.Y.3
Wang, C.C.4
-
12
-
-
0001435905
-
Anomalously increased effective thermal conductivities of ethylene glycol-based nanofluids containing copper nanoparticles
-
Eastman J.A., Choi S.U.S., Li S., Yu W., and Thompson L. Anomalously increased effective thermal conductivities of ethylene glycol-based nanofluids containing copper nanoparticles. Appl. Phys. Lett. 78 (2001) 718-720
-
(2001)
Appl. Phys. Lett.
, vol.78
, pp. 718-720
-
-
Eastman, J.A.1
Choi, S.U.S.2
Li, S.3
Yu, W.4
Thompson, L.5
-
13
-
-
56649120696
-
New temperature dependent thermal conductivity data for water-based nanofluids
-
Minsta H.A., Roy G., Nguyen C.T., and Doucet D. New temperature dependent thermal conductivity data for water-based nanofluids. Int. J. Therm. Sci. 48 (2009) 363-371
-
(2009)
Int. J. Therm. Sci.
, vol.48
, pp. 363-371
-
-
Minsta, H.A.1
Roy, G.2
Nguyen, C.T.3
Doucet, D.4
-
15
-
-
47249104612
-
The effects of temperature, volume fraction and vibration time on the thermo-physical properties of a carbon nanotube suspension (carbon nanofluid)
-
Amrollahi A., Hamidi A.A., and Rashidi A.M. The effects of temperature, volume fraction and vibration time on the thermo-physical properties of a carbon nanotube suspension (carbon nanofluid). Nanotechnology 19 (2008) 315701
-
(2008)
Nanotechnology
, vol.19
, pp. 315701
-
-
Amrollahi, A.1
Hamidi, A.A.2
Rashidi, A.M.3
-
16
-
-
37749004290
-
Thermal conductivity and particle agglomeration in alumina nanofluids: experiment and theory
-
Timofeeva E.V., Gavrilow A.N., Mccloskey J.M., Tolmachev Y.V., Sprunt S., Lopatina L.M., and Selinger J.V. Thermal conductivity and particle agglomeration in alumina nanofluids: experiment and theory. Phys. Rev. E. 76 (2007) 061203
-
(2007)
Phys. Rev. E.
, vol.76
, pp. 061203
-
-
Timofeeva, E.V.1
Gavrilow, A.N.2
Mccloskey, J.M.3
Tolmachev, Y.V.4
Sprunt, S.5
Lopatina, L.M.6
Selinger, J.V.7
-
17
-
-
38349078270
-
Predicting the effective thermal conductivity of carbon nanotube based nanofluids
-
Sastry N.N.V., Bhunia A., Sundararajan T., and Das S.K. Predicting the effective thermal conductivity of carbon nanotube based nanofluids. Nanotechnology 19 (2008) 055704
-
(2008)
Nanotechnology
, vol.19
, pp. 055704
-
-
Sastry, N.N.V.1
Bhunia, A.2
Sundararajan, T.3
Das, S.K.4
-
18
-
-
18144386609
-
Thermal conductivity of nanoscale colloidal solutions (nanofluids)
-
Prasher R., Bhattacharya P., and Phelan P.E. Thermal conductivity of nanoscale colloidal solutions (nanofluids). Phys. Rev. Lett. 94 (2005) 025901
-
(2005)
Phys. Rev. Lett.
, vol.94
, pp. 025901
-
-
Prasher, R.1
Bhattacharya, P.2
Phelan, P.E.3
-
19
-
-
56949106667
-
Thermal conductivity enhancement of nanofluids in conjunction with electrical double layer (EDL)
-
Jung J.Y., and Yoo J.Y. Thermal conductivity enhancement of nanofluids in conjunction with electrical double layer (EDL). Int. J. Heat Mass Transfer 52 (2009) 525
-
(2009)
Int. J. Heat Mass Transfer
, vol.52
, pp. 525
-
-
Jung, J.Y.1
Yoo, J.Y.2
-
20
-
-
2942694254
-
Role of Brownian motion in the enhanced thermal conductivity of nanofluids
-
Jang S.P., and Choi S.U.S. Role of Brownian motion in the enhanced thermal conductivity of nanofluids. Appl. Phys. Lett. 84 (2004) 4316
-
(2004)
Appl. Phys. Lett.
, vol.84
, pp. 4316
-
-
Jang, S.P.1
Choi, S.U.S.2
-
22
-
-
50549103866
-
Thermophysical and electrokinetic properties of nanofluids-a critical review
-
Murshed S.M.S., Leong K.C., and Yang C. Thermophysical and electrokinetic properties of nanofluids-a critical review. Appl. Therm. Eng. 28 (2008) 2109-2125
-
(2008)
Appl. Therm. Eng.
, vol.28
, pp. 2109-2125
-
-
Murshed, S.M.S.1
Leong, K.C.2
Yang, C.3
-
24
-
-
31144453694
-
Thermal conductivity of Fe nanofluids depending on the cluster size of nanoparticles
-
Hong K.S., Hong T.K., and Yang H.S. Thermal conductivity of Fe nanofluids depending on the cluster size of nanoparticles. Appl. Phys. Lett. 88 (2006) 031901
-
(2006)
Appl. Phys. Lett.
, vol.88
, pp. 031901
-
-
Hong, K.S.1
Hong, T.K.2
Yang, H.S.3
-
25
-
-
27444434138
-
Nanoparticle-dispersion-dependent thermal conductivity in nanofluids
-
Hong T.K., and Yang H.S. Nanoparticle-dispersion-dependent thermal conductivity in nanofluids. J. Korean Phys. Soc. 47 (2005) S321
-
(2005)
J. Korean Phys. Soc.
, vol.47
-
-
Hong, T.K.1
Yang, H.S.2
-
26
-
-
21844468761
-
Heat transfer enhancement by using nanofluids in forced convection flows
-
Maïga S., Palm S., Nguyen C., Roy G., and Galanis N. Heat transfer enhancement by using nanofluids in forced convection flows. Int. J. Heat Fluid Flow 26 (2005) 530
-
(2005)
Int. J. Heat Fluid Flow
, vol.26
, pp. 530
-
-
Maïga, S.1
Palm, S.2
Nguyen, C.3
Roy, G.4
Galanis, N.5
-
27
-
-
0017551342
-
The effect of Brownian motion on the bulk stress in a suspension of spherical particles
-
Batchelor G.K. The effect of Brownian motion on the bulk stress in a suspension of spherical particles. J. Fluid. Mech. 83 (1977) 97
-
(1977)
J. Fluid. Mech.
, vol.83
, pp. 97
-
-
Batchelor, G.K.1
-
28
-
-
62949187225
-
Synthesis and characterization of monodispersed copper colloids in polar solvents
-
Yu W., Xie H.Q., Chen L.F., Li Y., and Zhang C. Synthesis and characterization of monodispersed copper colloids in polar solvents. Nanoscale Res. Lett. 4 (2009) 465
-
(2009)
Nanoscale Res. Lett.
, vol.4
, pp. 465
-
-
Yu, W.1
Xie, H.Q.2
Chen, L.F.3
Li, Y.4
Zhang, C.5
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