Numerical Simulation and Flow Field Analysis of Porous Water Jet Nozzle Based on Fluent
Abstract
:1. Introduction
2. Physical Model and Control Equation
2.1. Physical Model and Simulation Scheme
2.2. Governing Equation
- (1)
- Continuity equation:
- (2)
- Navier–Stokes equations:
- (3)
- The momentum equation:
- (4)
- Turbulent kinetic energy equation:
2.3. Turbulent Eddy Viscosity Model
2.4. Mesh Setting and Mesh Independence Verification
2.5. Solution Method and Boundary Condition Setting
- (1)
- The RNG model in the k-ε (2 eqn) model was selected. The wall function selects the standard wall function.
- (2)
- The model constants were Cmu = 0.0845, C1-Epsilon = 1.42, C2-Epsilon = 1.68.
- (3)
- The material is liquid water, the nozzle outlet is the inlet of the fluid domain, the inlet is the velocity inlet, the velocity is 25 m/s, and the turbulence intensity is 5%. Considering the influence of gravity, the initial velocity of the y-axis is set to −9.81 m/s.
- (4)
- The outlet condition is the pressure outlet, the initial gauge pressure is 0, the reflux turbulence intensity is 5%, and the reflux turbulence viscosity ratio is 10.
- (5)
- Set the wall as a non-slip solid wall.
- (6)
- The time step method is set to “Automatic”. The length scale method is set to “Conservative”. The time scale factor is set to 1. The number of iterations is set to five hundred. The report interval is set to 0.5. The data update interval is set to 1.
3. Analysis of Jet Flow Field in Pipe
3.1. Flow Field Analysis of 25° Tilt Angle Rear Nozzle
3.2. Flow Field Analysis of 30° Tilt Angle Rear Nozzle
3.3. Flow Field Analysis of 35° Tilt Angle Rear Nozzle
3.4. Flow Field Analysis of 40° Tilt Angle Rear Nozzle
4. Flow Velocity Analysis
4.1. Velocity Analysis of Front Nozzle
4.2. Velocity Analysis of Pipe Wall Flow Field
4.3. Analysis of Velocity Displacement Relationship in y Direction
4.4. Comparison of Velocity Displacement of Different Aperture Jets
5. Conclusions
- (1)
- The rear nozzle’s varying inclination angles significantly influence the internal flow field of the pipeline. Specifically, when the inclination angle is set at 35°, further increasing the angle leads to a shortened stroke from the outlet to the wall surface, resulting in an elevated instantaneous velocity of the rear jet upon contact with the wall. However, this does not translate to a continual increase in the overall wall velocity.
- (2)
- The interplay between the rear and front jets creates vortex zones and wall backflow within the pipeline, subsequently affecting the jet velocity of the front nozzle. Notably, at an inclination angle of 35° for the rear nozzle, the impact on the flow velocity within the front jet pipe is minimized. Taking the 35° inclined rear nozzle scheme as an example, the jet velocity of the 2 mm aperture front nozzle experiences an attenuation of 77.2%, while the jet velocity of the 3.5 mm aperture front nozzle undergoes an attenuation of 67.7%.
- (3)
- When the inclination angle of the rear nozzle remains constant, augmenting the nozzle aperture from 2 mm to 3.5 mm effectively decreases the size of the vortex area. The vortex area of the 3.5 mm aperture nozzle comprises 63% of that of the 2 mm aperture nozzle. The reduction in this vortex can improve the dredging efficiency and reduce the damage to the workpiece.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Scheme | Nozzle Diameters (mm) | Rear Nozzle Inclination | Initial Velocity (m/s) |
---|---|---|---|
1 | 2 | 25° | 25 |
2 | 2 | 30° | 25 |
3 | 2 | 35° | 25 |
4 | 2 | 40° | 25 |
5 | 3.5 | 30° | 25 |
6 | 3.5 | 35° | 25 |
7 | 3.5 | 40° | 25 |
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Pan, Y.; Geng, Z.; Yuan, H.; Zhai, S.; Huo, F. Numerical Simulation and Flow Field Analysis of Porous Water Jet Nozzle Based on Fluent. Appl. Sci. 2024, 14, 7075. https://doi.org/10.3390/app14167075
Pan Y, Geng Z, Yuan H, Zhai S, Huo F. Numerical Simulation and Flow Field Analysis of Porous Water Jet Nozzle Based on Fluent. Applied Sciences. 2024; 14(16):7075. https://doi.org/10.3390/app14167075
Chicago/Turabian StylePan, Yue, Zhongcheng Geng, Hao Yuan, Shengyu Zhai, and Fulin Huo. 2024. "Numerical Simulation and Flow Field Analysis of Porous Water Jet Nozzle Based on Fluent" Applied Sciences 14, no. 16: 7075. https://doi.org/10.3390/app14167075
APA StylePan, Y., Geng, Z., Yuan, H., Zhai, S., & Huo, F. (2024). Numerical Simulation and Flow Field Analysis of Porous Water Jet Nozzle Based on Fluent. Applied Sciences, 14(16), 7075. https://doi.org/10.3390/app14167075