Study on Key Parameters for Jet Impacting Pulverized Coal Deposited in Coal-Bed Methane Wells
Abstract
:1. Introduction
2. Theoretical Model
3. Modelling and Meshing
3.1. Parameters of the Model
3.2. Verification of This Case
4. Discussion
- (a)
- The depth and width of the pit grow rapidly during the first stage. At this stage, the jet has left-right symmetry around the jet axis.
- (b)
- The second stage is the stabilization period. The scouring pit stabilizes at a well-defined depth and width. At this stage, the scouring pit may also continue to slightly grow in size.
- (c)
- The jet exhibits oscillations during the third stage. The jet becomes asymmetrical and starts to “oscillate” from left to right, where the inner surface of the casing (system boundary) is the stationary point of the oscillation. The jet continues to scour the left and right sides of the scour pit, which continues to expand in width but not in depth.
- (d)
- The fourth stage is the dynamic stabilisation stage. At this stage, the jet continues to oscillate around the jet axis, albeit with a well-defined amplitude, and the scour range is also well-defined. Therefore, the depth and width of the pit do not change significantly, and the scouring pit reaches a state of dynamic equilibrium.
4.1. Target Distance
4.2. Nozzle Diameter
4.3. Nozzle Outflow Velocity
5. Conclusions
- (1)
- The deposition of pulverized coal by jet impacting can be categorised into four phases: rapid growth, stabilisation, jet oscillation and dynamic stabilisation. It takes about 6.8 s from the start of the jet to the dynamic stabilization stage, which is a guiding role for the residence time of the pulverized coal impacting unit during CBM well impacting. At the same time, there is a decreasing trend of impact depth variation after 6.8 s. Therefore, the residence time of the jet device should be no more than 6.8 s when impacting the pulverized coal at the bottom of the well, at which time the jet flushing device should continue to move downward slowly, in order to ensure the efficiency of impacting pulverized coal.
- (2)
- The onset time for the jet oscillation stage decreases with increasing target distance and increases with the diameter and outflow velocity of the nozzle. There is a constant energy exchange between the jet and the surrounding fluid and solids. The energy loss on both sides of the jet appears to be unequal. When the energy difference between the two sides of the jet develops to more than a certain amount, which varies under different conditions, the phenomenon of jet oscillation occurs.
- (3)
- In the process of jet impacting deposited pulverized coal, the impact pit can reach the maximum depth at 3 s, while it takes 7 s to reach the maximum width. Considering the best flushing effect, it is recommended that the single point hovering time of the equipment should not be less than 7 s during the operation of deposited pulverized coal flushing. If the hovering time is less than 7 s, the jet will not be able to effectively drive the movement of the pulverized coal deposited near the inner wall of the casing. This will significantly reduce the pulverized coal cleaning efficiency.
- (4)
- The depth and width of the pit decrease with increasing target distance. The depth and width of the pit increase with both the diameter and outflow velocity of the nozzle. Therefore, for the parameter design of the jet device, larger nozzles should be selected or the pressure of the power fluid for impacting pulverized coal should be higher while considering the balance between operating costs and efficiency of deposited pulverized coal flushing.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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No. | H (mm) | d (mm) | V (m/s) |
---|---|---|---|
1 | 28.6 | 2 | 0.5 |
2 | 38.7 | 3 | 1.0 |
3 | 63.8 | 4 | 1.5 |
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Zhu, H.; Xue, L.; Zhang, F.; Qi, Y.; Zhao, J.; Feng, D. Study on Key Parameters for Jet Impacting Pulverized Coal Deposited in Coal-Bed Methane Wells. Coatings 2022, 12, 1454. https://doi.org/10.3390/coatings12101454
Zhu H, Xue L, Zhang F, Qi Y, Zhao J, Feng D. Study on Key Parameters for Jet Impacting Pulverized Coal Deposited in Coal-Bed Methane Wells. Coatings. 2022; 12(10):1454. https://doi.org/10.3390/coatings12101454
Chicago/Turabian StyleZhu, Hongying, Likun Xue, Fenna Zhang, Yaoguang Qi, Junwei Zhao, and Dehua Feng. 2022. "Study on Key Parameters for Jet Impacting Pulverized Coal Deposited in Coal-Bed Methane Wells" Coatings 12, no. 10: 1454. https://doi.org/10.3390/coatings12101454
APA StyleZhu, H., Xue, L., Zhang, F., Qi, Y., Zhao, J., & Feng, D. (2022). Study on Key Parameters for Jet Impacting Pulverized Coal Deposited in Coal-Bed Methane Wells. Coatings, 12(10), 1454. https://doi.org/10.3390/coatings12101454