Dynamic Simulation and Characteristic Analysis on Freezing Process in Ballast Tanks of Polar LNG Carriers
Abstract
:1. Introduction
2. Materials and Methods
2.1. Presentation of Heat Transfer Model in Ballast Tank
2.2. Freezing Theories
2.2.1. Two-Phase Flow Control Equation
2.2.2. Phase Transformation Model
2.2.3. Composition Equation
2.3. Physical Model and Boundary Conditions of Ballast Tank Freezing
2.3.1. Physical Model of Ballast Tank Freezing
2.3.2. Boundary Condition
2.3.3. Material Physical Parameters
2.4. Numerical Calculation Method and Verification
2.4.1. Numerical Analysis Process
2.4.2. Grid Independence Analysis
2.4.3. Numerical Model Validation
3. Discussion and Analysis
3.1. Influence of Environmental Parameters on the Temperature Field Evolution
3.1.1. Cold Air Temperature
3.1.2. Seawater Temperature
3.1.3. Ballast Water Height
3.2. Influence of Environmental Parameters on the Ice Shape Evolution
3.2.1. Cold Air Temperature
3.2.2. Seawater Temperature
3.2.3. Ballast Water Height
3.3. The Limitations of the Numerical Model
4. Conclusions
- (1)
- The decrease in cold air temperature significantly impacts the temperature of ballast water. As the cold air temperature drops, the rate of temperature reduction at the ballast water level accelerates markedly. When the cold air temperature reaches −40 °C, the temperature of the ballast water reaches its lowest point at −1.34 °C. Additionally, changes in the seawater temperature greatly affect the temperature near the bulkhead. As the seawater temperature decreases, the rate of temperature reduction in the ballast water at the right bulkhead also accelerates significantly. When the seawater temperature is −4 °C, the ballast water temperature at the right bulkhead reaches its lowest point at −1.518 °C. The change in the height of the ballast water level has a substantial influence on the heat transfer rate. As the height of the liquid level decreases, the time required for heat transfer increases, causing the heat transfer rate to slow down. When the height of the liquid level is 5 m, the heat transfer rate is at its fastest, and the temperature of the ballast water at that level is the lowest, measuring −1.14 °C.
- (2)
- The decrease in the cold air temperature significantly impacts the evolution of ice formation at the ballast water level. As the cold air temperature drops, the thickness of the ice layer formed by freezing at the surface of the ballast water increases. When the ambient temperature reaches −40 °C, the volume fraction of the ice phase reaches its maximum, approximately 84.33%. Additionally, changes in the seawater temperature primarily influence the evolution of ice formation at the right bulkhead. As the seawater temperature decreases, the thickness of the ice layer formed by freezing at the right bulkhead also increases significantly. When the seawater temperature is −4 °C, the freezing degree of the ballast tank is at its highest, with the volume fraction of the ice phase in the ballast tank reaching approximately 91.53%. The change in the height of the ballast water level primarily affects the volume of ballast water. As the liquid level decreases, the volume of ballast water diminishes, resulting in a shorter time required for the ballast water to freeze and an increase in the degree of freezing. When the liquid level height is 2 m, the volume fraction of the ice phase is approximately 92.35%.
- (3)
- The variation in the temperature field has the most significant impact on the evolution of ice shape. As the rate of change in the ballast water temperature increases, the rate of ice shape evolution also shows an upward trend. Notably, in areas where the temperature field experiences substantial fluctuations, a faster freezing rate in ballast water leads to a thicker ice layer and a greater degree of freezing.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Value |
---|---|
Density/(kg/m3) | 1000 |
Thermal conductivity/(W/m·K) | 0.6 |
Specific heat capacity/(J/kg·K) | 4182 |
Solidus temperature/°C | 0 |
Grid Size/m | Temperature/°C | Volume of Ice Phase/% | |
---|---|---|---|
a | b | ||
0.1 | −1.009 | −1.036 | 68.470 |
0.06 | −1.014 | −1.042 | 69.049 |
0.03 | −1.015 | −1.043 | 69.336 |
Case | Cold Air Temperature/°C | Seawater Temperature/°C | Ballast Water Height/m |
---|---|---|---|
A1 | −20 | −2 | 4.5 |
A2 | −25 | −2 | 4.5 |
A3 | −30 | −2 | 4.5 |
A4 | −35 | −2 | 4.5 |
A5 | −40 | −2 | 4.5 |
Case | Cold Air Temperature/°C | Seawater Temperature/°C | Ballast Water Height/m |
---|---|---|---|
S1 | −30 | 0 | 4.5 |
S2 | −30 | −1 | 4.5 |
S3 | −30 | −2 | 4.5 |
S4 | −30 | −3 | 4.5 |
S5 | −30 | −4 | 4.5 |
Case | Cold Air Temperature/°C | Seawater Temperature/°C | Ballast Water Height/m |
---|---|---|---|
B1 | −30 | −2 | 5 |
B2 | −30 | −2 | 4.5 |
B3 | −30 | −2 | 4 |
B4 | −30 | −2 | 3 |
B5 | −30 | −2 | 2 |
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Bai, X.; Xu, C.; Wu, D. Dynamic Simulation and Characteristic Analysis on Freezing Process in Ballast Tanks of Polar LNG Carriers. Appl. Sci. 2025, 15, 5192. https://doi.org/10.3390/app15095192
Bai X, Xu C, Wu D. Dynamic Simulation and Characteristic Analysis on Freezing Process in Ballast Tanks of Polar LNG Carriers. Applied Sciences. 2025; 15(9):5192. https://doi.org/10.3390/app15095192
Chicago/Turabian StyleBai, Xu, Cao Xu, and Daolei Wu. 2025. "Dynamic Simulation and Characteristic Analysis on Freezing Process in Ballast Tanks of Polar LNG Carriers" Applied Sciences 15, no. 9: 5192. https://doi.org/10.3390/app15095192
APA StyleBai, X., Xu, C., & Wu, D. (2025). Dynamic Simulation and Characteristic Analysis on Freezing Process in Ballast Tanks of Polar LNG Carriers. Applied Sciences, 15(9), 5192. https://doi.org/10.3390/app15095192