Numerical Simulation Study on Flow Laws and Heat Transfer of Gas Hydrate in the Spiral Flow Pipeline with Long Twisted Band
Abstract
:1. Introduction
2. Numerical Simulation Method
2.1. Physical Model
2.1.1. Geometric Model
2.1.2. Boundary Conditions
2.1.3. Initial Conditions
2.2. Meshing
2.3. Mathematical Model
2.3.1. Governing Equations
2.3.2. Turbulent Motion Equation
2.3.3. Discrete Phase Model
2.4. Calculation Method
2.5. Numerical Examples Validate
2.5.1. Grid Independence Test
2.5.2. Experimental Verification of Gas–Solid Two-Phase Spiral Flow and Heat Transfer
3. Results
3.1. Velocity Distribution Law
3.2. Distribution Law of Spiral Flow Pressure Drop
3.2.1. Influence of Reynolds Number on Pressure Drop
3.2.2. Influence of Twisted Rate on Pressure Drop
3.3. Analysis of Heat Transfer Law
3.3.1. Axial Temperature Distribution Law
3.3.2. Axial Distribution Law of Nusselt Number
3.3.3. Radial Distribution Law of Nusselt Number
3.4. Particle Deposition Law
4. Conclusions
- (1)
- In the plain direct current of a light pipe without a twisted band, the velocity is maximum in the central area of the pipe and then decreases uniformly toward the pipe wall, and the velocity change at each section is not obvious. However, two distinct eddies are formed on both sides of the twisted band with the maximum velocity at the center of the vortex. Along the direction of the pipe, the two vortices move from the near twisted band toward the wall, and it can effectively carry the hydrate particles deposited on the pipe wall.
- (2)
- At the same section of the pipe, the pressure drop of the pipe increases with the increase of Reynolds number; when the Reynolds number is higher, there are greater increases of pressure drop. Along the direction of the pipeline, the pressure drop becomes more obvious with the increase of particle transport distance, and the pressure drop curve is similar to a parabola. In the case of constant particle Reynolds number, the twisted rate is greater, the spiral flow strength is weaker, the tangential velocity is smaller, the axial velocity loss is smaller, and the pressure drop is smaller. Therefore, the pressure loss can be reduced as much as possible while the effect of spiral flow can be guaranteed.
- (3)
- In a straight light pipe flow without a twisted band, the Nusselt number is in a parabolic shape with the opening downwards. At the center of the pipe, the Nusselt number gradually decreases toward the pipe wall at the maximum, and the attenuation gradient of Nu is large at the near wall. The curve of Nusselt number appears as a trough in the center of the pipe and a peak at half of the pipe diameter with twisted tape. With the reduction of the twisted rate, the Nusselt number becomes larger. Spiral flow can make the temperature distribution of the flow field in the pipeline more even and prevent the large number of formation of hydrate particles in the pipeline wall due to the large temperature difference.
- (4)
- The Reynolds number is larger, and the particles are less likely to deposit. The particle concentration is larger, and the particle deposition is closer to the pipe. When the twisted rate is 6.2, the initial concentration is between 1% and 8%, and the critical deposition Reynolds number is between 3000 and 5000. The spiral flow carries the hydrate particles a distance that is 3–4 times greater than that without a twisted band.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Particle Concentration (%) | Particle Diameter (m) | Twist with Twist Rate Y | Reynolds Number Re |
---|---|---|---|
1 | 0.01 | 0 | 5000 |
2 | 0.02 | 6.2 | 10,000 |
4 | 0.03 | 7.4 | 15,000 |
6 | 0.06 | 8.8 | 20,000 |
8 | 0.06 | 8.8 | 20,000 |
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Rao, Y.; Li, L.; Wang, S.; Zhao, S.; Zhou, S. Numerical Simulation Study on Flow Laws and Heat Transfer of Gas Hydrate in the Spiral Flow Pipeline with Long Twisted Band. Entropy 2021, 23, 489. https://doi.org/10.3390/e23040489
Rao Y, Li L, Wang S, Zhao S, Zhou S. Numerical Simulation Study on Flow Laws and Heat Transfer of Gas Hydrate in the Spiral Flow Pipeline with Long Twisted Band. Entropy. 2021; 23(4):489. https://doi.org/10.3390/e23040489
Chicago/Turabian StyleRao, Yongchao, Lijun Li, Shuli Wang, Shuhua Zhao, and Shidong Zhou. 2021. "Numerical Simulation Study on Flow Laws and Heat Transfer of Gas Hydrate in the Spiral Flow Pipeline with Long Twisted Band" Entropy 23, no. 4: 489. https://doi.org/10.3390/e23040489
APA StyleRao, Y., Li, L., Wang, S., Zhao, S., & Zhou, S. (2021). Numerical Simulation Study on Flow Laws and Heat Transfer of Gas Hydrate in the Spiral Flow Pipeline with Long Twisted Band. Entropy, 23(4), 489. https://doi.org/10.3390/e23040489