Skip to main content
Advertisement
Browse Subject Areas
?

Click through the PLOS taxonomy to find articles in your field.

For more information about PLOS Subject Areas, click here.

< Back to Article

Figure 1.

Geometry of the flow model and coordinate system.

More »

Figure 1 Expand

Table 1.

Thermophysical properties of the base fluid and nanoparticles [48].

More »

Table 1 Expand

Table 2.

Comparison of dimensionless heat transfer rates for different values of Pr when .

More »

Table 2 Expand

Figure 2.

Effects of viscosity variation and velocity slip parameters on dimensionless velocity for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 2 Expand

Figure 3.

Effects of Darcy number and suction/injection parameters on dimensionless velocity for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 3 Expand

Figure 4.

Effects of suction/injection parameters and solid volume fraction of nanoparticles on dimensionless temperature for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 4 Expand

Figure 5.

Effects of dimensionless time and scaling parameters on dimensionless temperature for (a) Cu-water and (b) Al2O3-water nanoflu.

More »

Figure 5 Expand

Figure 6.

Effects of thermal slip and dimensionless frequency on dimensionless temperature for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 6 Expand

Figure 7.

Variation of skin friction with suction/injection parameters and solid volume fraction of nanoparticles for different values of viscosity variation parameter for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 7 Expand

Figure 8.

Variation of skin friction with dimensionless time and scaling parameters for different values of dimensionless frequency for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 8 Expand

Figure 9.

Variation of skin friction with mixed convection and velocity slip parameters for different values of Darcy number for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 9 Expand

Figure 10.

Variation of Nusselt numbers with suction/injection parameters and solid volume fraction of nanoparticles for different values of viscosity variation parameter for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 10 Expand

Figure 11.

Variation of Nusselt numbers with dimensionless time and scaling parameters for different values of dimensionless frequency for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 11 Expand

Figure 12.

Variation of Nusselt numbers with mixed convection and velocity slip parameters for different values of Darcy number for (a) Cu-water and (b) Al2O3-water nanofluids.

More »

Figure 12 Expand