Comparative Study on Violent Sloshing with Water Jet Flows by Using the ISPH Method
Abstract
:1. Introduction
2. ISPH Methodology
2.1. Governing Equations
2.2. Particle Approximation
2.3. Poisson Pressure Equation
2.4. Calculation of Spatial Derivatives
2.5. Inlet Boundary Treatment
3. Numerical Results and Validation
3.1. Sloshing Tank Simulation and Validation
3.2. Convergence Analysis of ISPH Model
3.3. Numerical Validation of the Water Jet Model
3.4. Validation of Injected Water Jet Flow Model
4. Results and Analyses
4.1. Sloshing Behaviors with Water Jet
4.2. The Effects of the Water Jet Flow Position
4.3. The Effects of the Water Jet Flow Number
5. Conclusions
- (1)
- The ISPH computations are based on a 2D model. According to previous experimental research, it seems there is not much difference between the 2D and 3D models, especially in the impact pressure and water surface;
- (2)
- The compressibility of entrapped air also has effects on the violent sloshing process, and the maximum Mach number of all the particles in the violent sloshing process was smaller than 1%, which proves the ISPH model can be used;
- (3)
- In the simulations of coastal and ocean engineering problems, the SPH method is mainly used for the impulsive impact on breaking waves, and the longer simulations are often carried out by traditional CFD methods;
- (4)
- The presence of turbulence would produce fully three-dimensional flow structures in the breaking region at the tip of the wave crest [26]. However, this study focused on the macro liquid impact pressure on the tank walls and the general free surface deformation. Hence, a 2D model could also provide a reasonable simulation.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
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Particle Size (m) | Ea (M1) | Ea (M2) |
---|---|---|
0.004 | 1.77% | 1.35% |
0.003 | 0.97% | 0.93% |
0.002 | 0.40% | 0.36% |
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Jiang, H.; You, Y.; Hu, Z.; Zheng, X.; Ma, Q. Comparative Study on Violent Sloshing with Water Jet Flows by Using the ISPH Method. Water 2019, 11, 2590. https://doi.org/10.3390/w11122590
Jiang H, You Y, Hu Z, Zheng X, Ma Q. Comparative Study on Violent Sloshing with Water Jet Flows by Using the ISPH Method. Water. 2019; 11(12):2590. https://doi.org/10.3390/w11122590
Chicago/Turabian StyleJiang, Hua, Yi You, Zhenhong Hu, Xing Zheng, and Qingwei Ma. 2019. "Comparative Study on Violent Sloshing with Water Jet Flows by Using the ISPH Method" Water 11, no. 12: 2590. https://doi.org/10.3390/w11122590
APA StyleJiang, H., You, Y., Hu, Z., Zheng, X., & Ma, Q. (2019). Comparative Study on Violent Sloshing with Water Jet Flows by Using the ISPH Method. Water, 11(12), 2590. https://doi.org/10.3390/w11122590