Biomedical Engineering Reference
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Venerus, D. C. and Jiang, Y. (2011), Investigation of thermal transport in colloidal
silica dispersions (nanofluids), J. Nanopart. Res., Vol. 13, pp. 3075-3083.
Wagener, M. and Gunther, B. (1999), Sputtering on liquids - a versatile process for
the production of magnetic suspensions, J. Magn. Magn. Mater., Vol. 201,
pp. 41-44.
Wang, B.-X., Zhou, L.-P. and Peng, X.-F. (2003), A fractal model for predicting the
effective thermal conductivity of liquid with suspension of nanoparticles, Int. J.
Heat Mass Tran., Vol. 46, pp. 2665-2672.
Wang, X., Xu, X. and Choi, S. U. S. (1999), Thermal conductivity of nanoparticle-
fluid mixture. J. Thermophys. Heat Tran., Vol. 13, pp. 474-480.
Wang, X.-J., Zhu, D.-S. and Yang, S. (2009a), Investigation of pH and SDBS on
enhancement of thermal conductivity in nanofluids, Chem. Phys. Lett., Vol. 470,
pp. 107-111.
Wang, L. and Wei, X. (2009), Nanofluids: Synthesis, heat conduction, and extension,
Trans. ASME, J. Heat Trans., Vol. 131, No. 3, pp. 033102, doi:10.1115/
1.3056597.
Wang, B.-X., Sheng, W.-Y. and Peng, X.-F. (2009c), A Novel statistical clustering
model for predicting thermal conductivity of nanofluid, Int. J. Thermophys.,
Vol. 30, pp. 1992-1998.
Wang, Z. L., Tang, D.W., Liu, S., Zheng, X. H. and Araki, N. (2007), Thermal-
conductivity and thermal-diffusivity measurements of nanofluids by 3
method
and mechanism analysis of heat transport, Int. J. Thermophys., Vol. 28,
pp. 1255-1268.
Wasp, E. J., Kenny, J. P. and Gandhi, R. L. (1977), Solid-Liquid Flow Slurry
Pipeline Transportation, Series on Bulk Materials Handling. Trans. Tech.
Publications, Vol. 1, Clausthal, Germany.
Wen, D. and Ding, Y. (2004a), Experimental investigation into convective heat
transfer of nanofluids at the entrance region under laminar flow conditions. Int.
J. Heat Mass Tran., Vol. 47, pp. 5181-5188.
Wen, D. and Ding, Y.
ω
(2004b), Effective thermal conductivity of aqueous
suspensions
of
carbon
nanotubes
(carbon
nanotube
nanofluids).
J.
Thermophys. Heat Tran., Vol. 18, pp. 481-485.
Wen, D. and Ding, Y. (2005), Formulation of nanofluids for natural convective heat
transfer applications. Int. J. Heat Fluid Fl., Vol. 26, pp. 855-864.
Wen, D. and Ding, Y. (2006), Natural convective heat transfer of suspensions of
titanium dioxide nanoparticles (nanofluids). IEEE T. Nanotechnol., Vol. 5,
pp. 220-227.
Xie, H., Wang, J., Xi, T. and Liu, Y. (2002a), Thermal conductivity of suspensions
containing nanosized SiC particles, Int. J. Thermophys., Vol. 23, pp. 571-580.
Xie, H., Wang, J., Xi, T. and Ai, F. (2002b), Thermal conductivity enhancement of
suspensions containing nano sized alumina particles, J. Appl. Phys., Vol. 91,
pp. 4568-4572.
Xie, H., Wang, J., Xi, T., Liu, Y. and Ai, F. (2002c), Dependence of the thermal
conductivity of nanoparticle-fluid mixture on the base fluid, J. Mater. Sci. Lett.,
Vol. 21, pp. 1469-1471.
Xie, H., Lee, H., Youn, W. and Choi, M. (2003), Nanofluids containing multiwalled
carbon nanotubes and their enhanced thermal conductivities, J. Appl. Phys.,
Vol. 94, pp. 4967-4971.
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