Prediction of Maneuverability in Shallow Water of Fishing Trawler by Using Empirical Formula
Abstract
:1. Introduction
2. Mathematical Model
2.1. Coordinate System and Motion Equations
2.2. Forces and Moment Affecting the Hull
2.3. Forces and Moment from the Propeller
2.4. Forces and Moment from the Rudder
3. Empirical Formula
3.1. Kijima et al. Empirical Formula
3.2. Corrected Empirical Formula
- (1)
- Prior to the study, the hull shape parameters of 5 model fishing vessels (5 Stern trawlers) used for deriving the corrected empirical formula were compared to 13 merchant ships (2 VLCCs, 3 ULCCs, 3 Cargo ships, 2 Container ships, 1 RO/RO ship, 1 Car carrier ship, and 1 LNG ship) included in the model test process for deriving the Kijima et al. empirical formula (Equation (7)). The Cb of the model fishing vessels used in the study had similar values to the high-speed slender ship (container and car carrier), while L/B was similar to a low-speed full ship (VLCC and ULCC). From these results, it can be seen that the fishing vessels have some distinct characteristics different from those of the merchant ships (Table 1, Figure 2).
- (2)
- It was also discovered that hull shape parameter has a strong correlation to deriving the hydrodynamic coefficients adapting the empirical formula of Kijima et al. The coefficients showing the different tendencies of merchant ships and fishing vessels were recognized. Examples of typical hydrodynamic coefficients are shown in Table 2 and Figure 3.
- (3)
- The correlation between the selected characteristics of hull shape parameters and the maneuvering hydrodynamic coefficients are shown and averaged using a trend line to derive a corrected empirical formula expected to be more suitable for fishing vessels (Figure 4). The equations for deriving the coefficients in the even keel state are shown in Equation (8) below.
- (4)
- The results for maneuvering hydrodynamic coefficients of the 5 model fishing vessels were derived from the corrected empirical formula (Table 3), and the validity was verified by performing a turning movement simulation in 4 vessels, except for F(E), which was under construction at the time (Figure 5).
3.3. Kijima et al. Empirical Formula in Shallow Water including Correcting Factors
3.4. Discriminant for Course Stability
4. Maneuverability Prediction of a Fishing Trawler
4.1. Target Fishing Vessel
4.2. Prediction of Maneuverability in Deep Water
4.2.1. Derivation of Maneuvering Hydrodynamic Coefficients
4.2.2. Conditions for Maneuverability Evaluation
- Deep, unrestricted water;
- Calm environment;
- Full load (summer load line draught, even keel condition);
- Steady approach at the test speed.
4.2.3. Results of Maneuverability Evaluation
4.3. Prediction of Maneuverability in Shallow Water
4.3.1. Derivation of Maneuvering Hydrodynamic Coefficients
4.3.2. Discriminant of Course Stability by Ship-Draft to Water-Depth Ratio
4.3.3. Conditions for Maneuverability Evaluation
4.3.4. Simulation for Turning Motion
4.3.5. Simulation for 10/10 zig-zag
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
rudder area | |
effective rudder inflow angle | |
rudder force increase factor | |
coefficient for starboard and port rudder, stability index | |
rudder normal force gradient coefficient | |
constants | |
constants | |
propeller diameter | |
coefficients in the shallow water | |
coefficients in the deep water | |
normal force acting on the rudder/nondimensionalized | |
correcting factor | |
h | ship-draft to water-depth ratio |
rudder height | |
inertia moment of axis direction, added inertia moment/nondimensionalized | |
advance coefficient | |
aspect ratio of the rudder | |
thrust coefficient | |
mass of ship, added mass of x axis direction, added mass of y axis direction/nondimensionalized | |
propeller revolution | |
propeller revolution | |
slip ratio | |
thrust deduction coefficient in straight forward moving direction | |
steering deduction factor | |
resultant velocity, drift angle, rudder angle | |
effective rudder inflow speed | |
velocity components at the center of gravity of ship and yaw rate about z axis | |
effective wake coefficient at the position of the propeller | |
effective wake coefficient at the position of the rudder | |
effective wake coefficient at the position of the propeller in straight forward moving direction | |
effective wake coefficient at the position of the rudder in straight forward moving direction | |
distance between C.G and the center of additional lateral force/nondimensionalized | |
longitudinal coordinate of the position of the rudder/nondimensionalized | |
effective inflow angle to the rudder in maneuvering motion/nondimensionalized | |
rudder angle | |
flow straightening coefficient | |
effective wake fraction at the position of the propeller | |
· (dot) | derivative with respect to time |
′ (prime) | nondimensionalized quantity |
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Type of Ship | Name of Ship | ||||||
---|---|---|---|---|---|---|---|
Fishing vessel | F (A), trawler | 0.607 | 0.1408 | 5.208 | 2.727 | 0.3930 | 0.1165 |
F (B), trawler | 0.616 | 0.1485 | 4.927 | 2.733 | 0.3840 | 0.1250 | |
F (C), trawler | 0.574 | 0.1379 | 5.492 | 2.640 | 0.4260 | 0.1045 | |
F (D), trawler | 0.5872 | 0.1223 | 5.667 | 2.885 | 0.4128 | 0.1036 | |
F (E), trawler | 0.5923 | 0.1247 | 5.520 | 2.905 | 0.4077 | 0.1073 | |
Merchant ship | M (A), VLCC | 0.802 | 0.1256 | 5.734 | 2.777 | 0.1980 | 0.1399 |
M (B), VLCC | 0.831 | 0.1360 | 6.127 | 2.400 | 0.1690 | 0.1356 | |
M (C), ULCC | 0.835 | 0.1248 | 5.365 | 2.987 | 0.1650 | 0.1556 | |
M (D), ULCC | 0.821 | 0.1464 | 4.505 | 3.033 | 0.1790 | 0.1823 | |
M (E), ULCC | 0.820 | 0.1464 | 5.000 | 2.732 | 0.1800 | 0.1640 | |
M (F), Cargo | 0.773 | 0.1368 | 6.127 | 2.386 | 0.2270 | 0.1262 | |
M (G), Cargo | 0.698 | 0.1120 | 5.967 | 2.993 | 0.3020 | 0.1170 | |
M (H), Cargo | 0.651 | 0.1264 | 6.649 | 2.380 | 0.3490 | 0.0979 | |
M (I), Container | 0.5717 | 0.1086 | 6.897 | 2.670 | 0.4283 | 0.0829 | |
M (J), Container | 0.566 | 0.1040 | 6.477 | 2.969 | 0.4340 | 0.0874 | |
M (K), RO/RO | 0.557 | 0.0816 | 6.812 | 3.598 | 0.4430 | 0.0818 | |
M (L), Car carrier | 0.522 | 0.1072 | 5.187 | 3.597 | 0.4780 | 0.1006 | |
M (M), LNG | 0.714 | 0.0800 | 6.112 | 4.090 | 0.2860 | 0.1168 |
Type of Ship | Name of Ship | ||||
---|---|---|---|---|---|
Fishing vessel | F (A) | 0.3842 | −0.1748 | 0.1408 | −0.0562 |
F (B) | 0.4082 | −0.1875 | 0.1485 | −0.0581 | |
F (C) | 0.3629 | −0.1568 | 0.1379 | −0.0555 | |
F (D) | 0.3371 | −0.1554 | 0.1223 | −0.0511 | |
F (E) | 0.3461 | −0.1610 | 0.1247 | −0.0518 | |
Merchant ship | M (A) | 0.3930 | −0.2098 | 0.1256 | −0.0520 |
M (B) | 0.3914 | −0.1892 | 0.1368 | −0.0552 | |
M (C) | 0.2866 | −0.1243 | 0.1086 | −0.0469 | |
M (D) | 0.3092 | −0.1510 | 0.1072 | −0.0464 | |
M (E) | 0.3396 | −0.1755 | 0.1120 | −0.0479 | |
M (F) | 0.4138 | −0.2335 | 0.1248 | −0.0518 | |
M (G) | 0.2891 | −0.1752 | 0.0800 | −0.0368 | |
M (H) | 0.2856 | −0.1311 | 0.1040 | −0.0453 | |
M (I) | 0.3355 | −0.1469 | 0.1264 | −0.0523 | |
M (J) | 0.2426 | −0.1227 | 0.0816 | −0.0374 | |
M (K) | 0.4850 | −0.2734 | 0.1464 | −0.0576 | |
M (L) | 0.4034 | −0.2034 | 0.1360 | −0.0549 | |
M (M) | 0.4594 | −0.2460 | 0.1464 | −0.0576 |
Name of Ship | ||||
---|---|---|---|---|
F(A) | 0.3300 | −0.2026 | 0.1193 | −0.0498 |
F(B) | 0.3261 | −0.2148 | 0.1199 | −0.0497 |
F\(C) | 0.3267 | −0.1903 | 0.1180 | −0.0497 |
F(D) | 0.3341 | −0.1828 | 0.1147 | −0.0499 |
F(E) | 0.3325 | −0.1891 | 0.1148 | −0.0499 |
Hull | 85.0 | |
15.4 | ||
5.3 | ||
0.592 | ||
Rudder | 7.631 | |
Max. (deg.) | 45.0 | |
Propeller | Rotation direction | Right |
No. of blades | 4 | |
3.8 |
Linear HydrodyNamic Coefficients | Kijima et al. Formula | Corrected Formula |
---|---|---|
0.3461 | 0.3325 | |
−0.1610 | −0.1891 | |
0.1247 | 0.1148 | |
−0.0518 | −0.0499 |
Turning Motion | 10/10 zig-zag | |||
---|---|---|---|---|
Actual Ship | Simulations | Actual Ship | Simulations | |
Wind direction (deg, Relative) & Speed (m/s) | port: 205, 3.8 st’bd: 206, 4.1 | calm | 341, 7.0 | calm |
Water depth (m) | approx. 130 | approx. 130 | ||
Ship draft (m) | fwd: 5.18 aft: 5.28 | fwd: 5.3 aft: 5.3 | fwd: 5.18 aft: 5.28 | fwd: 5.3 Aft: 5.3 |
Test speed (kts) | port: 14.2 st’bd: 14.52 | port: 14.04 st’bd: 14.04 | both 14.81 | both 14.04 |
Scale | Rudder Area Ratio | Remark | ||||
---|---|---|---|---|---|---|
F(A) | 1/20.833 | 3.0 | 0.576 | 0.016 | 1/39.3 | |
F(B) | 1/20.2 | 3.0 | 0.609 | 0.019 | 1/34.6 | |
F(C) | 1/24.167 | 3.0 | 0.546 | 0.016 | 1/38.2 | |
F(D) | 1/28.333 | 3.0 | 0.529 | 0.009 | 1/63.1 | |
F(E) | 1/28.333 | 3.0 | 0.544 | 0.010 | 1/59.0 | Target fishing vessel |
Deep Water | Shallow Water | ||
---|---|---|---|
H/d 6.0 h (=d/H 0.1666) | H/d 1.5 h (=d/H 0.6666) | H/d 1.2 h (=d/H 0.8333) | |
0.3325 | 0.4865 | 0.8640 | |
−0.1891 | −0.2701 | 0.0797 | |
0.1148 | 0.1799 | 0.3300 | |
−0.0499 | −0.0642 | −0.1071 | |
−0.0051 | −0.0173 | 0.0657 |
Turning Motion | 10/10 zig-zag | |
Wind direction (deg, Relative) & Speed (m/s) | calm | |
Water depth | ||
Ship draft (m) | fwd: 5.3 aft: 5.3 | fwd: 5.3 aft: 5.3 |
Test speed (kts) | port: 14.04 st’bd: 14.04 | port: 14.04 st’bd: 14.04 |
Deep Water | ShallowWater | IMO Criteria | |||
H/d 6.0 h (=d/H 0.1666) | H/d 1.5 h (=d/H 0.6666) | H/d 1.2 h (=d/H 0.8333) | (Deep Water) | ||
Advance (m) | port | 224 (2.6 L) | 237 (2.8 L) | 281 (3.3 L) | (4.5 L) |
st’bd | 229 (2.7 L) | 246 (2.9 L) | 292 (3.4 L) | ||
mean | 227 (2.7 L) | 242 (2.8 L) | 287 (3.4 L) | ||
Tac. Dia. (m) | port | 250 (2.9 L) | 332 (3.9 L) | 448 (5.3 L) | (5.0 L) |
st’bd | 260 (3.0 L) | 353 (4.2 L) | 467 (5.5 L) | ||
mean | 255 (3.0 L) | 343 (4.0 L) | 458 (5.4 L) |
Deep Water | Shallow Water | IMO Criteria | ||
---|---|---|---|---|
H/d 6.0h (=d/H 0.1666) | H/d 1.5h (=d/H 0.6666) | H/d 1.2h (=d/H 0.8333) | (Deep Water) | |
L/V (sec.) | 11.8 | 11.8 | 11.8 | |
1st over shoot angle (deg.) | 10.7 | 13.7 | 4.3 | (5 + 1/2(L/V)) |
2nd over shoot angle (deg.) | 8.4 | 9.4 | 4.9 | (17.5 + 0.75(L/V)) |
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Kim, S.-H.; Lee, C.-K.; Chae, Y.-B. Prediction of Maneuverability in Shallow Water of Fishing Trawler by Using Empirical Formula. J. Mar. Sci. Eng. 2021, 9, 1392. https://doi.org/10.3390/jmse9121392
Kim S-H, Lee C-K, Chae Y-B. Prediction of Maneuverability in Shallow Water of Fishing Trawler by Using Empirical Formula. Journal of Marine Science and Engineering. 2021; 9(12):1392. https://doi.org/10.3390/jmse9121392
Chicago/Turabian StyleKim, Su-Hyung, Chun-Ki Lee, and Yang-Bum Chae. 2021. "Prediction of Maneuverability in Shallow Water of Fishing Trawler by Using Empirical Formula" Journal of Marine Science and Engineering 9, no. 12: 1392. https://doi.org/10.3390/jmse9121392
APA StyleKim, S. -H., Lee, C. -K., & Chae, Y. -B. (2021). Prediction of Maneuverability in Shallow Water of Fishing Trawler by Using Empirical Formula. Journal of Marine Science and Engineering, 9(12), 1392. https://doi.org/10.3390/jmse9121392