Your English writing platform
Discover LudwigExact(19)
Figure 6 presents the results of the viscosity of the nanofluids with different volume fractions as a function of temperature.
A detailed soot model is included which can predict soot volume fractions as a function of the strain rate and the fuel mole fraction.
The convective heat transfer coefficient of the nanofluids with different volume fractions as a function of Reynolds number (Re) was shown in Fig. 9.
The substrate response model calculates the distribution of the alloying elements as well as the evolution of the phase fractions as a function of depth and oxidation time.
A nonlinear, numerical solution of the partial differential equations results in predictions of temperature, pressure, velocity, and species fractions as a function of position and time.
The relative domain fractions as a function of film thickness are also calculated and compared with experimental measurements in PbTiO3 thin films grown on SrTiO3 and KTaO3 substrates.
Similar(41)
(b) Bar chart showing the packing fraction as a function of a/b ratio.
The solution gives the expression of dissociation fraction as a function of temperature on a streamline.
Results are presented in terms of bifurcation diagrams for the phase fraction as a function of milling power.
Correlations are obtained for the distribution of melting front and solid fraction as a function of time during charging and discharging of LHTES.
Existing correlations for interfacial shear stress friction factor and the void fraction as a function of gas superficial velocity were also gathered and briefly discussed.
Write better and faster with AI suggestions while staying true to your unique style.
Since I tried Ludwig back in 2017, I have been constantly using it in both editing and translation. Ever since, I suggest it to my translators at ProSciEditing.

Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com