Effect of Different Configurations on Bubble Cutting and Process Intensification in a Micro-Structured Jet Bubble Column Using Digital Image Analysis
Abstract
:1. Introduction
2. Experimental Setup
2.1. Experimental Devices and Flow Conditions
2.2. Materials
3. Measurement Methods
3.1. Capture Bubbles
3.2. Bubble Size Measurement
3.3. Liquid Velocity and Flow Field
4. Results and Discussion
4.1. Effect of Different Configurations on Bubble Morphology
4.2. Effect of Different Mesh Configurations on the Flow Field
4.3. Effect of Different Mesh Configurations on Bubble Size
4.4. Effect of Different Mesh Configurations on Mass Transfer Performance
5. Conclusions
- (1)
- The bubble column performance with wire mesh was significantly better than that without wire mesh. In the presence of the mesh, the large bubbles were cut into small bubbles, and the average bubble size decreased by 22.7% (single stage) and 29.7% (two stages), respectively, which increased the gas–liquid interfacial area. The interaction between the wire mesh and the bubbles also enhanced the interface dynamics and updated the phase boundary, which meant a higher surface renewal rate and local mass transfer rate could be realized.
- (2)
- The wire mesh affected the overall flow regime within the MSJBC and caused compartmentalized liquid circulation patterns above and below the mesh, resulting in less liquid back-mixing inside the MSJBC. The local vortex caused by the intrusive effect of the screen made it difficult for small bubbles to escape from the liquid phase and prolonged the gas residence time (reaction time).
- (3)
- For the gas holdup and interfacial area, which are directly related to the mass transfer performance, the average gas holdup increased by almost 5.7% (single stage) and 9.7% (two stages), while the interfacial area increased from 34.8% to 41.4% for the single mesh and from 43.5% to 73.2% for the two stages mesh in the presence of the inserted mesh.
- (4)
- Through chemisorption experiments of CO2 into an NaOH aqueous solution, we concluded that the wire mesh could enhance chemical reactions subject to a poor mass transfer efficiency.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
a | Gas–liquid interfacial area, m2/m3 |
C | bubble chord length, m |
deq | equivalent bubble diameter, m |
dmax | maximum bubble diameter, m |
dmin | minimum bubble diameter, m |
d32 | Sauter mean diameter, m |
DC | bubble column diameter, m |
DL | molecular diffusion coefficient, m2/s |
g | gravitational acceleration, m/s2 |
hf | final liquid height, m |
hi | initial liquid height, m |
klα | volumetric mass transfer coefficient, 1/s |
displacement, m | |
N | number of bubbles, dimensionless |
∆t | time, s |
liquid velocity, m/s | |
Vb | volume of the bubble |
Ug | superficial gas velocity, m/s |
Greek letters | |
εg | gas holdup, dimensionless |
Abbreviations | |
BC | bubble column |
LIF | laser induced fluorescence |
MSJBC | micro-structured jet bubble column |
NDF | number density function |
PIV | particle image velocimetry |
UDF | user-defined function |
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Cases | 1 | 2 | 3 | 4 |
---|---|---|---|---|
Gas flow rate (l/h) | 36 | 72 | 108 | 144 |
Ug (mm/s) | 4 | 8 | 12 | 16 |
Inlet gas velocity (cm/s) | 141.5 | 283 | 424.5 | 566 |
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Chen, G.; Zhang, Z.; Gao, F.; Li, J.; Dong, J. Effect of Different Configurations on Bubble Cutting and Process Intensification in a Micro-Structured Jet Bubble Column Using Digital Image Analysis. Processes 2021, 9, 2220. https://doi.org/10.3390/pr9122220
Chen G, Zhang Z, Gao F, Li J, Dong J. Effect of Different Configurations on Bubble Cutting and Process Intensification in a Micro-Structured Jet Bubble Column Using Digital Image Analysis. Processes. 2021; 9(12):2220. https://doi.org/10.3390/pr9122220
Chicago/Turabian StyleChen, Guanghui, Zhongcheng Zhang, Fei Gao, Jianlong Li, and Jipeng Dong. 2021. "Effect of Different Configurations on Bubble Cutting and Process Intensification in a Micro-Structured Jet Bubble Column Using Digital Image Analysis" Processes 9, no. 12: 2220. https://doi.org/10.3390/pr9122220
APA StyleChen, G., Zhang, Z., Gao, F., Li, J., & Dong, J. (2021). Effect of Different Configurations on Bubble Cutting and Process Intensification in a Micro-Structured Jet Bubble Column Using Digital Image Analysis. Processes, 9(12), 2220. https://doi.org/10.3390/pr9122220