Figure 1.
Geometric model of tank and ship. (a) Ship model; (b) tank model.
Figure 1.
Geometric model of tank and ship. (a) Ship model; (b) tank model.
Figure 2.
Numerical pool model. (a) Numerical pool in head sea condition; (b) numerical pool in transverse wave condition.
Figure 2.
Numerical pool model. (a) Numerical pool in head sea condition; (b) numerical pool in transverse wave condition.
Figure 3.
Meshing results in head sea condition. (a) Meshing of the mid-longitudinal section of the hull; (b) meshing of the hull fore and aft; (c) meshing of tanks.
Figure 3.
Meshing results in head sea condition. (a) Meshing of the mid-longitudinal section of the hull; (b) meshing of the hull fore and aft; (c) meshing of tanks.
Figure 4.
Meshing results in transverse wave condition.
Figure 4.
Meshing results in transverse wave condition.
Figure 5.
Comparison of numerical waves and theoretical waves.
Figure 5.
Comparison of numerical waves and theoretical waves.
Figure 6.
Comparison between numerical calculation results of ship motion and experimental values. (a) Ship heaving motion; (b) ship pitching motion.
Figure 6.
Comparison between numerical calculation results of ship motion and experimental values. (a) Ship heaving motion; (b) ship pitching motion.
Figure 7.
Verification of rolling calculation results.
Figure 7.
Verification of rolling calculation results.
Figure 8.
Time history curve of ship pitching motion under different liquid loading rates.
Figure 8.
Time history curve of ship pitching motion under different liquid loading rates.
Figure 9.
Change of liquid level in one cycle of ship motion with a liquid loading rate of 0.8.
Figure 9.
Change of liquid level in one cycle of ship motion with a liquid loading rate of 0.8.
Figure 10.
Variation of the pressure in the tank of the ship with a liquid loading rate of 0.8.
Figure 10.
Variation of the pressure in the tank of the ship with a liquid loading rate of 0.8.
Figure 11.
Pitch time history curves of ships with a liquid loading rate of 0.8 at different wavelengths.
Figure 11.
Pitch time history curves of ships with a liquid loading rate of 0.8 at different wavelengths.
Figure 12.
Moment of a liquid-carrying ship when rolling. (a) Liquid loading rate 0.8 and wavelength 3 m; (b) liquid loading rate 0.8 and wavelength 6 m; (c) liquid loading rate 0.8 and wavelength 11 m; (d) liquid loading rate 0 and wavelength 11 m.
Figure 12.
Moment of a liquid-carrying ship when rolling. (a) Liquid loading rate 0.8 and wavelength 3 m; (b) liquid loading rate 0.8 and wavelength 6 m; (c) liquid loading rate 0.8 and wavelength 11 m; (d) liquid loading rate 0 and wavelength 11 m.
Figure 13.
Changes of liquid level in tank during one period of ship rolling motion. (a) Liquid loading rate 0.8 and wavelength 6 m; (b) liquid loading rate 0.8 and wavelength 3 m; (c) liquid loading rate 0.8 and wavelength 15 m; (d) liquid loading rate 0 and wavelength 11 m.
Figure 13.
Changes of liquid level in tank during one period of ship rolling motion. (a) Liquid loading rate 0.8 and wavelength 6 m; (b) liquid loading rate 0.8 and wavelength 3 m; (c) liquid loading rate 0.8 and wavelength 15 m; (d) liquid loading rate 0 and wavelength 11 m.
Figure 14.
Variation of cabin pressure during one period of ship rolling motion.
Figure 14.
Variation of cabin pressure during one period of ship rolling motion.
Figure 15.
Rolling free decay curve of ships with different liquid loading rates. (a) Free decay curves for carrier ratios of 0 and 0.2, respectively; (b) Free decay curves for carrier ratios of 0.2 and 0.4, respectively; (c) Free decay curves for carrier ratios of 0.4 and 0.6, respectively; (d) Free decay curves for carrier ratios of 0.6 and 0.8, respectively; (e) Free decay curves for carrier ratios of 0.8 and 0.98, respectively.
Figure 15.
Rolling free decay curve of ships with different liquid loading rates. (a) Free decay curves for carrier ratios of 0 and 0.2, respectively; (b) Free decay curves for carrier ratios of 0.2 and 0.4, respectively; (c) Free decay curves for carrier ratios of 0.4 and 0.6, respectively; (d) Free decay curves for carrier ratios of 0.6 and 0.8, respectively; (e) Free decay curves for carrier ratios of 0.8 and 0.98, respectively.
Figure 16.
Variation curve of ship rolling natural frequency with liquid loading rate.
Figure 16.
Variation curve of ship rolling natural frequency with liquid loading rate.
Figure 17.
Rolling free decay motion of ship with a liquid loading rate of 0.98. (a) Vertical view; (b) midship section. In the picture, the liquid is blue and the gas is red.
Figure 17.
Rolling free decay motion of ship with a liquid loading rate of 0.98. (a) Vertical view; (b) midship section. In the picture, the liquid is blue and the gas is red.
Figure 18.
Time history curves of ship rolling under different wavelengths when the liquid loading rate is 0.8. (a) Time history curve of stable phase; (b) the result after time dimensionless.
Figure 18.
Time history curves of ship rolling under different wavelengths when the liquid loading rate is 0.8. (a) Time history curve of stable phase; (b) the result after time dimensionless.
Figure 19.
Time history curve of ship rolling motion under different incident wave wavelengths. (a) Liquid loading rate 0.4; (b) liquid loading rate 0.
Figure 19.
Time history curve of ship rolling motion under different incident wave wavelengths. (a) Liquid loading rate 0.4; (b) liquid loading rate 0.
Figure 20.
Rolling time history curves of ships with different liquid loading rates when the incident wave wavelength is 3 m.
Figure 20.
Rolling time history curves of ships with different liquid loading rates when the incident wave wavelength is 3 m.
Figure 21.
Rolling time history curves of ships with different liquid loading rates under different wavelengths. (a) Wavelength 6 m; (b) wavelength 11 m; (c) wavelength 15 m.
Figure 21.
Rolling time history curves of ships with different liquid loading rates under different wavelengths. (a) Wavelength 6 m; (b) wavelength 11 m; (c) wavelength 15 m.
Table 1.
Main parameters of ship model.
Table 1.
Main parameters of ship model.
Parameter | Real Ship | Ship Model |
---|
Scale ratio | 1 | 37.9 |
Length between vertical lines LPP/m | 230 | 6.0686 |
Breadth B/m | 32.2 | 0.8496 |
Design draft D/m | 10.8 | 0.2850 |
Displacement Δ/t | 51958.719 | 0.9560 |
Vertical position of center of gravity KG/m | 7.2768 | 0.1920 |
Longitudinal position of center of gravity LCG/m | 111.616 | 2.9450 |
Pitch inertia radius Kyy/Lpp | 0.25 | 0.25 |
Roll inertia radius Kxx/B | 0.4 | 0.4 |
Table 2.
Main parameters of tanks.
Table 2.
Main parameters of tanks.
| Length (m) | Width (m) | Height (m) | Corner (m) | Indent Angle |
---|
Tank 1 | 0.5 | 0.667 | 0.417 | 0.2/0.1 | 10° |
Tank 2 | 1.0 | 0.667 | 0.417 | 0.2/0.1 | 0 |
Tank 3 | 1.0 | 0.667 | 0.417 | 0.2/0.1 | 0 |
Tank 4 | 0.5 | 0.667 | 0.417 | 0.2/0.1 | 10° |
Tandem region | 0.03 | 0.3 | 0.05 | 0 | 0 |
Distance from tank centroid to bow L/m | 3.125 |
Distance from tank bottom to baseline Z/m | 0.293 |
Table 3.
Calculation condition settings in head sea condition.
Table 3.
Calculation condition settings in head sea condition.
Case | Wavelength λ/m | Wave Height H/m | Degree of Freedom of Hull Movement | Loading Rate |
---|
1 | 7.015 | 0.092 | pitch | 0 |
2 | 7.015 | 0.092 | pitch | 0.8 |
3 | 7.015 | 0.092 | pitch | 0.9 |
4 | 7.015 | 0.092 | pitch | 0.98 |
5 | 2.0 | 0.092 | pitch | 0.8 |
6 | 42.52 | 0.092 | pitch | 0.8 |
Table 4.
Calculation condition settings in transverse waves condition.
Table 4.
Calculation condition settings in transverse waves condition.
Case | Loading Rate | Wavelength λ/m | Wave Height H/m | Degree of Freedom of Hull Movement |
---|
1 | 0.8 | 3 | 0.092 | roll |
2 | 0.8 | 6 | 0.092 | roll |
3 | 0.8 | 11 | 0.092 | roll |
4 | 0.8 | 15 | 0.092 | roll |
5 | 0.4 | 3 | 0.092 | roll |
6 | 0.4 | 6 | 0.092 | roll |
7 | 0.4 | 11 | 0.092 | roll |
8 | 0.4 | 15 | 0.092 | roll |
9 | 0 | 3 | 0.092 | roll |
10 | 0 | 6 | 0.092 | roll |
11 | 0 | 11 | 0.092 | roll |
12 | 0 | 15 | 0.092 | roll |
Table 5.
Natural frequency of ship rolling motion with different liquid loading rate.
Table 5.
Natural frequency of ship rolling motion with different liquid loading rate.
Liquid Loading Rate | Ship’s Initial Angular Velocity (rad/s) | Roll Natural Frequency (rad/s) |
---|
0 | 1.2 | 3.634 |
0.2 | 1.2 | 2.729 |
0.4 | 1.2 | 2.705 |
0.6 | 1.2 | 2.659 |
0.8 | 1.2 | 2.417 |
0.98 | 1.2 | 2.927 |
Table 6.
The ratio of the incident wave frequency to the roll natural frequency when the loading rate is 0.8.
Table 6.
The ratio of the incident wave frequency to the roll natural frequency when the loading rate is 0.8.
Wavelength (m) | Incident Wave Frequency (rad/s) | Ratio of Incident Wave Frequency to Natural Frequency |
---|
3 | 4.532 | 1.875 |
6 | 3.205 | 1.326 |
11 | 2.367 | 0.979 |
15 | 2.027 | 0.838 |
Table 7.
The ratio of the incident wave frequency to the roll natural frequency when the loading rate is 0.4.
Table 7.
The ratio of the incident wave frequency to the roll natural frequency when the loading rate is 0.4.
Wavelength (m) | Incident Wave Frequency (rad/s) | Ratio of Incident Wave Frequency to Natural Frequency |
---|
3 | 4.532 | 1.675 |
6 | 3.205 | 1.185 |
11 | 2.367 | 0.875 |
15 | 2.027 | 0.749 |
Table 8.
The ratio of the incident wave frequency to the roll natural frequency when the loading rate is 0.
Table 8.
The ratio of the incident wave frequency to the roll natural frequency when the loading rate is 0.
Wavelength (m) | Incident Wave Frequency (rad/s) | Ratio of Incident Wave Frequency to Natural Frequency |
---|
3 | 4.532 | 1.247 |
6 | 3.205 | 0.882 |
11 | 2.367 | 0.651 |
15 | 2.027 | 0.558 |
Table 9.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 3 m.
Table 9.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 3 m.
Liquid Loading Rate | Roll Natural Frequency (rad/s) | The Ratio of Natural Frequency to Incident Wave Frequency |
---|
0.8 | 2.417 | 0.533 |
0.4 | 2.705 | 0.597 |
0 | 3.634 | 0.802 |
Table 10.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 6 m.
Table 10.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 6 m.
Liquid Loading Rate | Roll Natural Frequency (rad/s) | The Ratio of Natural Frequency to Incident Wave Frequency |
---|
0.8 | 2.417 | 0.754 |
0.4 | 2.705 | 0.844 |
0 | 3.634 | 1.134 |
Table 11.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 11 m.
Table 11.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 11 m.
Liquid Loading Rate | Roll Natural Frequency (rad/s) | The Ratio of Natural Frequency to Incident Wave Frequency |
---|
0.8 | 2.417 | 1.021 |
0.4 | 2.705 | 1.143 |
0 | 3.634 | 1.535 |
Table 12.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 15 m.
Table 12.
Ratio of ship roll natural frequency to incident wave frequency when incident wave wavelength is 15 m.
Liquid Loading Rate | Roll Natural Frequency (rad/s) | The Ratio of Natural Frequency to Incident Wave Frequency |
---|
0.8 | 2.417 | 1.192 |
0.4 | 2.705 | 1.334 |
0 | 3.634 | 1.793 |