Hydraulic Characteristics and Vortex Characteristics of the Flow around the Piped Vehicle with Different Diameter-to-Length Ratios
Abstract
:1. Introduction
2. Numerical Simulation Method
2.1. Geometric Model Setup and Meshing
2.2. Boundary Conditions and Governing Equations
2.3. Solving Method and Discrete Method
3. Experimental Procedure
3.1. Experimental System
3.2. Selection of Cross-Section and Layout of Measurement Points
3.3. Validation of Simulated Results
4. Results and Discussion
4.1. Time-Averaged Velocity Distribution
4.2. Backflow Area Length
4.3. Vorticity Variation Characteristics
4.4. Vortex Structure Characteristics
4.5. Vortex Formation Length
5. Conclusions
- (1)
- The influences of the cylinder diameter on the gap flow velocity, the backflow area length, and the turbulence intensity were greater than those of the cylinder length. When the cylinder length was constant, the gap flow velocity, the backflow area length, and the turbulence intensity were proportional to the diameter-to-length ratio.
- (2)
- The effect of the diameter-to-length ratio on vortex formation length in the rear flow was greater than that in the gap flow. The presence of a piped vehicle made the original pipe turbulence disturbed, and the disturbance range extended to about a 7.5 D distance from the rear end.
- (3)
- A variety of vortex structures existed in the gap flow and rear flow areas. At the beginning of vortex development, ring vortices were generated at the front and rear ends of the cylinder body, so the vorticity appeared at these two locations first. Immediately afterward, the front ring vortex thickened and fell off along the cylinder body, and evolved into hairpin vortices with larger values of vorticity attached near the cylinder body. At the same time, a reflux vortex was formed after the rear ring vortex broke away from the cylinder body, and three groups of cross-twisted wake vortices were generated behind the three rear supports. Finally, some worm vortices were dispersed from the wake vortices.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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K | Total Number of Grids | Vorticity (1/s) | ||||
---|---|---|---|---|---|---|
2.5 mm | 2 mm | 1.5 mm | 2.5 mm | 2 mm | 1.5 mm | |
0.4 | 15,083,139 | 30,102,897 | 58,471,317 | 421.895 | 455.026 | 453.876 |
0.5 | 14,952,093 | 29,831,097 | 58,194,097 | 394.284 | 438.463 | 436.998 |
0.6 | 15,200,257 | 30,340,955 | 58,949,370 | 297.387 | 331.485 | 334.275 |
0.7 | 15,133,129 | 30,158,341 | 58,606,148 | 374.473 | 398.799 | 390.648 |
K | |
---|---|
0.4 | 0.705 D |
0.5 | 0.895 D |
0.6 | 0.757 D |
0.7 | 0.901 D |
K | 0.4 | 0.5 | 0.6 | 0.7 | ||||
---|---|---|---|---|---|---|---|---|
L | L | L | L | |||||
Gap flow | 15.42 | 0.4 D | 18.49 | 0.5 D | 14.39 | 0.6 D | 18.01 | 0.5 D |
Rear flow | 23.29 | 0.6 D | 42.11 | 0.8 D | 21.65 | 0.4 D | 41.71 | 0.9 D |
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Sun, L.; Sun, X.; Li, Y. Hydraulic Characteristics and Vortex Characteristics of the Flow around the Piped Vehicle with Different Diameter-to-Length Ratios. Water 2023, 15, 126. https://doi.org/10.3390/w15010126
Sun L, Sun X, Li Y. Hydraulic Characteristics and Vortex Characteristics of the Flow around the Piped Vehicle with Different Diameter-to-Length Ratios. Water. 2023; 15(1):126. https://doi.org/10.3390/w15010126
Chicago/Turabian StyleSun, Lei, Xihuan Sun, and Yongye Li. 2023. "Hydraulic Characteristics and Vortex Characteristics of the Flow around the Piped Vehicle with Different Diameter-to-Length Ratios" Water 15, no. 1: 126. https://doi.org/10.3390/w15010126
APA StyleSun, L., Sun, X., & Li, Y. (2023). Hydraulic Characteristics and Vortex Characteristics of the Flow around the Piped Vehicle with Different Diameter-to-Length Ratios. Water, 15(1), 126. https://doi.org/10.3390/w15010126