Figure 1.
Graphic representation of the single dimple configuration with the main geometric features.
Figure 1.
Graphic representation of the single dimple configuration with the main geometric features.
Figure 2.
Pressure contour of a square dimple with side 50 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s.
Figure 2.
Pressure contour of a square dimple with side 50 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s.
Figure 3.
The pressure profile perturbation is generated by a square dimple and characterized by different sides and values of the gap. Dimple depth 10 μm, sliding velocity 5 m/s.
Figure 3.
The pressure profile perturbation is generated by a square dimple and characterized by different sides and values of the gap. Dimple depth 10 μm, sliding velocity 5 m/s.
Figure 4.
(a) Pressure contour of a circular dimple with diameter 56.4 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s (b) Pressure contour of a rectangular dimple with side 100 μm × 25 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s.
Figure 4.
(a) Pressure contour of a circular dimple with diameter 56.4 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s (b) Pressure contour of a rectangular dimple with side 100 μm × 25 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s.
Figure 5.
Pressure distributions relative to the circle and rectangular case of
Figure 4, calculated along the dimples median line.
Figure 5.
Pressure distributions relative to the circle and rectangular case of
Figure 4, calculated along the dimples median line.
Figure 6.
Pressure profile of a square dimple with side of 50 μm and depth 10 μm for different values of the gap. Sliding velocity 5 m/s.
Figure 6.
Pressure profile of a square dimple with side of 50 μm and depth 10 μm for different values of the gap. Sliding velocity 5 m/s.
Figure 7.
Bearing capacity is generated by a square dimple. Influence of the gap for different sizes of the dimple. Dimple depth 10 μm, sliding velocity 5 m/s.
Figure 7.
Bearing capacity is generated by a square dimple. Influence of the gap for different sizes of the dimple. Dimple depth 10 μm, sliding velocity 5 m/s.
Figure 8.
The air volume fraction is generated by a square dimple with side of 75 μm and depth 10 μm. Gap 3 μm, sliding velocity 5 m/s. The volumes of the mesh where the volume fraction of air is greater than 1‰ are highlighted.
Figure 8.
The air volume fraction is generated by a square dimple with side of 75 μm and depth 10 μm. Gap 3 μm, sliding velocity 5 m/s. The volumes of the mesh where the volume fraction of air is greater than 1‰ are highlighted.
Figure 9.
Pressure profiles of a square dimple with side 50 μm and gap 10 μm, sliding velocity 5 m/s. Influence of the dimple depth on the pressure distribution.
Figure 9.
Pressure profiles of a square dimple with side 50 μm and gap 10 μm, sliding velocity 5 m/s. Influence of the dimple depth on the pressure distribution.
Figure 10.
Graphic representation of the full texturing configuration with the main geometric features reported.
Figure 10.
Graphic representation of the full texturing configuration with the main geometric features reported.
Figure 11.
Pressure contour of the full texturing configuration. Square dimples with side 50 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s.
Figure 11.
Pressure contour of the full texturing configuration. Square dimples with side 50 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s.
Figure 12.
Pressure contour of the full texturing configuration. Square dimples with side 50 μm and depth 10 μm. Gap 5 μm, sliding velocity 5 m/s.
Figure 12.
Pressure contour of the full texturing configuration. Square dimples with side 50 μm and depth 10 μm. Gap 5 μm, sliding velocity 5 m/s.
Figure 13.
Pressure contour of a multi-row configuration. Square dimples with side 50 μm and depth 10 μm. Gap 5 μm, sliding velocity 5 m/s.
Figure 13.
Pressure contour of a multi-row configuration. Square dimples with side 50 μm and depth 10 μm. Gap 5 μm, sliding velocity 5 m/s.
Figure 14.
Pressure profiles of a full texturing surface with dimples side 50 μm and gap 5 μm, sliding velocity 5 m/s. Comparison between a single-row configuration and a multi-row.
Figure 14.
Pressure profiles of a full texturing surface with dimples side 50 μm and gap 5 μm, sliding velocity 5 m/s. Comparison between a single-row configuration and a multi-row.
Figure 15.
The air volume fraction is generated by a full texturing configuration with dimples side 50 μm and gap 5 μm, sliding velocity 5 m/s. Set A of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 1‰ are highlighted.
Figure 15.
The air volume fraction is generated by a full texturing configuration with dimples side 50 μm and gap 5 μm, sliding velocity 5 m/s. Set A of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 1‰ are highlighted.
Figure 16.
The air volume fraction is generated by a full texturing configuration with dimples side 50 μm and gap 5 μm, sliding velocity 5 m/s. Set B of the cavitation coefficient. Only the portions of the mesh where the volume fraction of air is greater than 1‰ are highlighted.
Figure 16.
The air volume fraction is generated by a full texturing configuration with dimples side 50 μm and gap 5 μm, sliding velocity 5 m/s. Set B of the cavitation coefficient. Only the portions of the mesh where the volume fraction of air is greater than 1‰ are highlighted.
Figure 17.
Graphic representation of the partial texturing configuration with the main geometric features indicated.
Figure 17.
Graphic representation of the partial texturing configuration with the main geometric features indicated.
Figure 18.
(a) Pressure contour of a partial texturing configuration realized by square dimples with side 50 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s. (b) Pressure profiles calculated along the dimples median line, textured portion of 47%. Square dimples with side 50 μm and gap 10 μm, sliding velocity 5 m/s.
Figure 18.
(a) Pressure contour of a partial texturing configuration realized by square dimples with side 50 μm and depth 10 μm. Gap 10 μm, sliding velocity 5 m/s. (b) Pressure profiles calculated along the dimples median line, textured portion of 47%. Square dimples with side 50 μm and gap 10 μm, sliding velocity 5 m/s.
Figure 19.
Force is generated by the partial texturing surface as a function of the textured portion. Square dimples with side 50 μm and gap 10 μm, sliding velocity 5 m/s.
Figure 19.
Force is generated by the partial texturing surface as a function of the textured portion. Square dimples with side 50 μm and gap 10 μm, sliding velocity 5 m/s.
Figure 20.
Bearing capacity is generated by a partial texturing configuration. Influence of the gap for different values of saturation pressure. Set A cavitation coefficients. Square dimple with side 50 μm and depth 10 μm, sliding velocity 10 m/s.
Figure 20.
Bearing capacity is generated by a partial texturing configuration. Influence of the gap for different values of saturation pressure. Set A cavitation coefficients. Square dimple with side 50 μm and depth 10 μm, sliding velocity 10 m/s.
Figure 21.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 21.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 22.
Pressure profiles calculated along the dimples median line, considering different saturation pressure values. Square dimples with side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients.
Figure 22.
Pressure profiles calculated along the dimples median line, considering different saturation pressure values. Square dimples with side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients.
Figure 23.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 23.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 24.
Pressure profiles calculated along the dimples median line at different saturation pressures. Square dimples with side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients.
Figure 24.
Pressure profiles calculated along the dimples median line at different saturation pressures. Square dimples with side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set A of the cavitation coefficients.
Figure 25.
Bearing capacity is generated by a partial texturing configuration. Influence of the gap for different values of saturation pressure. Set B cavitation coefficients. Square dimple with side 50 μm and depth 10 μm, sliding velocity 10 m/s.
Figure 25.
Bearing capacity is generated by a partial texturing configuration. Influence of the gap for different values of saturation pressure. Set B cavitation coefficients. Square dimple with side 50 μm and depth 10 μm, sliding velocity 10 m/s.
Figure 26.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set B of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 26.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set B of the cavitation coefficients. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 27.
Pressure profiles calculated along the dimples median line at different saturation pressures. Square dimples with side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set B of the cavitation coefficients.
Figure 27.
Pressure profiles calculated along the dimples median line at different saturation pressures. Square dimples with side 50 μm and gap 8 μm, sliding velocity 10 m/s. Set B of the cavitation coefficients.
Figure 28.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set B of the cavitation coefficient. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 28.
The air volume fraction is generated by a partial texturing configuration with dimples side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set B of the cavitation coefficient. Only the portions of the mesh where the volume fraction of air is greater than 10% are highlighted. (a) Saturation pressure −0.7 bar; (b) Saturation pressure −0.5 bar; (c) Saturation pressure −0.3 bar.
Figure 29.
Pressure profiles calculated along the dimples median line at different saturation pressures. Square dimples with side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set B of the cavitation coefficient.
Figure 29.
Pressure profiles calculated along the dimples median line at different saturation pressures. Square dimples with side 50 μm and gap 3 μm, sliding velocity 10 m/s. Set B of the cavitation coefficient.
Figure 30.
The air volume fraction is generated by a partial texturing configuration using Set A cavitation coefficients and a saturation pressure of −0.7 bar. Gap 5 μm, sliding velocity 10 m/s. Highlighted only the volumes of the mesh where the volume fraction of air is greater than 1%. (a) Dimples side 50 μm. (b) Dimples side 40 μm. The textured portion remains unchanged.
Figure 30.
The air volume fraction is generated by a partial texturing configuration using Set A cavitation coefficients and a saturation pressure of −0.7 bar. Gap 5 μm, sliding velocity 10 m/s. Highlighted only the volumes of the mesh where the volume fraction of air is greater than 1%. (a) Dimples side 50 μm. (b) Dimples side 40 μm. The textured portion remains unchanged.
Table 1.
Fluid properties.
Table 1.
Fluid properties.
Parameter | Value |
---|
Density | 850 kg/m3 |
Viscosity (40 °C) | 46 mm2/s |
Specific heat capacity | 1950 J/(kg K) |
Table 2.
Mesh parameters.
Table 2.
Mesh parameters.
Min Element Size | Max Element Size | Average Element Quality | Average Aspect Ratio | Average Orthogonal Quality | Average Skewness |
---|
9.00 × 10−7 | 9.00 × 10−6 | 3.80 × 10−1 | 4.73 | 9.70 × 10−1 | 7.30 × 10−2 |
Table 3.
Different values of coefficients used in the simulations.
Table 3.
Different values of coefficients used in the simulations.
| Rnuc | Fr | Fa |
---|
Set A | 0.09 | 0.09 | 0.01 |
Set B | 0.09 | 50 | 0.01 |