Direct Sailing Variable Acceleration Dynamics Characteristics of Water-Jet Propulsion with a Screw Mixed-Flow Pump
Abstract
:1. Introduction
2. Research Method for Investigating the Variable Acceleration Motion of a Submersible
3. Water-Jet Propulsion Dynamics Modeling
3.1. Geometric Models and Meshing
3.1.1. Submersible Geometry Model
3.1.2. Determining and Meshing the Flow Region
3.1.3. Numerical Calculation Methods and Boundary Conditions
3.2. A Dynamics Model of Direct Sailing Variable Acceleration Motion
3.2.1. Basic Assumptions
3.2.2. Model of Thrust Provided by the Water-Jet Pump
3.2.3. A Dynamics Model of Variable Acceleration Motion
4. Water-Jet Propulsion Experiments
4.1. Test Platform and Main Equipment
4.2. Test Results
5. Calculation Results and Analysis
5.1. Analytic Solutions of the Submerged Speed
5.2. Analysis of the Results of Accelerated Motion from Propulsion
5.3. Analysis of Water-Jet Pump Performance During Acceleration
6. Conclusions
- (1)
- Based on the momentum theorem, a dynamics model of water-jet propulsion with a screw mixed-flow pump under the conditions of direct sailing variable acceleration coupled with pump geometry and hydraulic parameters was established. The analytical solution of the submerged speed of a submersible in variable acceleration motion with respect to time was obtained, and the variation of the submerged speed with respect to time satisfied a hyperbolic tangent function distribution.
- (2)
- The variation of the submerged speed with respect to time was considered the initial condition of the numerical calculation of other dynamics parameters, realized via a UDF. Utilizing this method, the strongly nonlinear relationships between the acceleration, drag, net thrust, propulsion torque, and efficiency with respect to time were revealed.
- (3)
- The values of submerged speed with respect to time satisfied a hyperbolic tangent function distribution. The variation of the submerged drag with time was similar to the step response of a second-order system with critical damping. The net thrust and acceleration increased sharply at the beginning and then decreased gradually to zero, especially at different rotation speeds of the water-jet pump.
- (4)
- Based on the principle of automatic control, the relationship between the submerged speed and time of the submersible was found to be similar to the step transient response of the first-order system, and the time constant ζ was related with the rotation speed of the water-jet pump.
Author Contributions
Funding
Conflicts of Interest
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Parameters | Ls/(mm) | Rmax/(mm) | Lc/(mm) | Lw/(mm) | Lh/(mm) |
---|---|---|---|---|---|
Value | 1500 | 136 | 247.5 | 746.5 | 76.66 |
Parameters | Q0/(m3/s) | H0/(m) | η0/(%) | n0/(rpm) | ns |
---|---|---|---|---|---|
Value | 0.00383 | 1.303 | 80 | 1500 | 277.9 |
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Han, W.; Shang, T.; Su, M.; Gong, C.; Li, R.; Meng, B. Direct Sailing Variable Acceleration Dynamics Characteristics of Water-Jet Propulsion with a Screw Mixed-Flow Pump. Appl. Sci. 2019, 9, 4194. https://doi.org/10.3390/app9194194
Han W, Shang T, Su M, Gong C, Li R, Meng B. Direct Sailing Variable Acceleration Dynamics Characteristics of Water-Jet Propulsion with a Screw Mixed-Flow Pump. Applied Sciences. 2019; 9(19):4194. https://doi.org/10.3390/app9194194
Chicago/Turabian StyleHan, Wei, Ting Shang, Min Su, Chengyong Gong, Rennian Li, and Bin Meng. 2019. "Direct Sailing Variable Acceleration Dynamics Characteristics of Water-Jet Propulsion with a Screw Mixed-Flow Pump" Applied Sciences 9, no. 19: 4194. https://doi.org/10.3390/app9194194
APA StyleHan, W., Shang, T., Su, M., Gong, C., Li, R., & Meng, B. (2019). Direct Sailing Variable Acceleration Dynamics Characteristics of Water-Jet Propulsion with a Screw Mixed-Flow Pump. Applied Sciences, 9(19), 4194. https://doi.org/10.3390/app9194194