The Law of Gas–Liquid Shear Mixing under the Synergistic Effect of Jet Stirring
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Setup
2.2. Experimental Method
3. Results and Discussion
3.1. Injection Ability Test
3.2. Gas–Liquid Shear Mixing
3.3. Disscussion
- (1)
- Under the synergetic action of jet mixing, the impact of the jet beam drives the impeller to assist in rotation. It is necessary to explore the interaction between the jet and mixing in order to improve the energy conversion rate. The critical condition of the impeller cutting the jet beam is explored to avoid the negative feedback effect and improve the energy conversion.
- (2)
- The centrifugal effect of solid materials caused by a high working speed, the specific representation of the centrifugal situation and centrifugal force of materials, and the influence of particle size and the density of materials on the suspension effect need to be further explored. Thus, it is helpful to study the flow field movement law in the tank and explore the migration law and dispersion of materials.
- (3)
- In this experimental study, no in-depth exploration was conducted on the environmental factors of equipment and materials. Although the experimental environment conditions were stable, in chemical production, materials will be at different working temperatures. Temperature can also affect the degree of mixing and other aspects, which requires further consideration.
4. Conclusions
- Flow rate is the key factor affecting gas ejection ability, and rotational speed has a certain effect. The interaction between flow rate and speed make the impeller at high speed cut the jet beam at a low flow rate, causing a negative effect and reducing the suction capacity. At high speeds and high flow rates there is a superimposed effect that enhances the suction effect.
- When the flow rate increases to 8.2 m3/h, the gas–liquid shear mixing is enhanced.The velocity difference between the gas and the liquid represents the shear condition of the gas–liquid phase. When the flow rate is before the turning point of 8.2 m3/h, the difference is relatively stable; when it is after the turning point, the difference decreases significantly and the degree of gas shear is strengthened.
- The mixing degree was evaluated by the ratio percentage of gas volume to liquid flow and the mixing coefficient. At a high rotational speed, the gas–liquid ratio shows a V-shaped trend, and the top angle condition is not conducive to the mixing of the two phases. The coefficients of gas–liquid two-phase mixing are calculated: the average filling volume is 0.01 m3/ (m3∙min), the uniform coefficient of filling is 77.51, and the mixing coefficient of the two-phase gas–liquid is 0.12.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Component | Parameter | Optimization Value Range | Value |
---|---|---|---|
Internal spray | Inner spray straight pipe diameter D1/mm | Determined based on working parameters | 12 |
Inner nozzle outlet diameter D2/mm | Matching ratio with external nozzle 1.96–3.24 | 6 | |
Internal nozzle convergence angle ° | 14–16 | 14 | |
External spray | Outer spray straight pipe diameter D3/mm | Determined based on working parameters | 30 |
Outer nozzle outlet diameter D4/mm | Fit with inner nozzle | 12 | |
Suction pipe | Suction tube diameter d1/mm | Determined based on working parameters | 8 |
Serial Number | Parameter/mm | ||||||
---|---|---|---|---|---|---|---|
Structural Components | Length | Width | Height | Diameter | Thickness | Number | |
1 | Upper impeller | 90 | 60 | — | 100 | 4 | 6 |
2 | Lower impeller | 160 | 45 | — | — | 4 | 4 |
3 | Feeding silo | — | — | 135 | 240 | 7.5 | 1 |
4 | Draft tube | 658 | — | — | 105 | 7.5 | 1 |
5 | Main shaft | 1166 | — | — | 19 | 1 | |
6 | Conical discharge port | — | — | — | big254 small120 | 7.5 | 1 |
7 | Tank | 2067 | 1138 | 860 | — | 7.5 | 1 |
8 | Sealing bottom plate | 1200 | 900 | — | — | 7.5 | 1 |
Point of Sampling | Sequence of Measurement | ||
---|---|---|---|
First Time | Second Time | Third Time | |
1 | 501 | 513 | 509 |
2 | 690 | 675 | 702 |
3 | 827 | 834 | 813 |
4 | 995 | 1003 | 1015 |
5 | 514 | 505 | 516 |
6 | 703 | 603 | 693 |
7 | 846 | 836 | 850 |
8 | 1015 | 988 | 1023 |
9 | 510 | 523 | 498 |
10 | 697 | 713 | 705 |
11 | 863 | 896 | 873 |
12 | 1075 | 1013 | 1050 |
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Zhou, W.; Wang, H.; Wang, L.; Li, L.; Cai, C.; Zhu, J. The Law of Gas–Liquid Shear Mixing under the Synergistic Effect of Jet Stirring. Processes 2023, 11, 2531. https://doi.org/10.3390/pr11092531
Zhou W, Wang H, Wang L, Li L, Cai C, Zhu J. The Law of Gas–Liquid Shear Mixing under the Synergistic Effect of Jet Stirring. Processes. 2023; 11(9):2531. https://doi.org/10.3390/pr11092531
Chicago/Turabian StyleZhou, Wei, Hui Wang, Lingling Wang, Liang Li, Chuanchuan Cai, and Jinbo Zhu. 2023. "The Law of Gas–Liquid Shear Mixing under the Synergistic Effect of Jet Stirring" Processes 11, no. 9: 2531. https://doi.org/10.3390/pr11092531
APA StyleZhou, W., Wang, H., Wang, L., Li, L., Cai, C., & Zhu, J. (2023). The Law of Gas–Liquid Shear Mixing under the Synergistic Effect of Jet Stirring. Processes, 11(9), 2531. https://doi.org/10.3390/pr11092531