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(a) Effect of nanoparticle size.
Here, we assessed the effect of nanoparticle size on binding to proteins.
Figure 3 Effect of nanoparticle size on CHF enhancement in nanofluids.
The inaccuracy of some of the experimental data is due to nanoparticle agglomeration obscuring the effect of nanoparticle size and loading on heat transfer augmentation.
The parametric study on the effect of nanoparticle size is conducted by considering the particle size in the range of 1-80 nm.
In this section, the effect of nanoparticle size on heat transfer and skin friction coefficient for Al2O3+ H2O nanofluid is discussed.
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Effects of nanoparticle size, concentration, material properties, temperature, and flow Reynolds number are also investigated.
Thus, it can be seen that the effects of nanoparticle size, lifting speed, precursor concentration, and dipping number on the roughness of dip-coated TiO2 thin films are different, which gets us thinking about that both the dispersity in ethyl alcohol and dip-coating processes will influence the resulted roughness.
Using frequency-domain photoacoustic correlation (the photoacoustic radar), we investigated the effects of nanoparticle size, concentration and biological media (e.g. serum, sheep blood) on the photoacoustic response in turbid media.
Variations in chitosan molecular weight, chitosan concentration, chitosan to TPP weight ratio and solution pH value were examined systematically for their effects on nanoparticle size, intensity of surface charge, and tendency of particle aggregation so as to enable speedy fabrication of chitosan nanoparticles with predetermined properties.
Comparison with experimental data for Fischer Tropsch synthesis by cobalt supported on carbon nanofibers, as well as for crotonaldehyde hydrogenation over gold supported on TiO2 illustrates applicability of the thermodynamic analysis for the explanation of nanoparticle size effect on kinetics.
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