Numerical Simulation of Fluid Dynamics in a Monolithic Column
Abstract
:1. Introduction
2. Numerical Method
3. Results and Discussion
3.1. Flow Field
3.2. Channel Length
3.3. Velocity Distribution
4. Conclusions
- (a)
- When the height (width) of the numerical domain was 49 μm or greater, the pressure drop was saturated. The order of the magnitudes of the pressure drop was M03 > M01 > M02 > M05 > M04. The pressure drop was smaller as the porosity and/or the pore size increased.
- (b)
- When particles were added to the flow, the trajectory of each particle was examined in order to evaluate the flow path length. Consequently, the flow path length was almost constant regardless of the column type, and was approximately 1.2 times larger than the thickness of the column.
- (c)
- The maximum flow velocity in the X direction increased with the pressure drop. The change in the flow direction was larger as the pressure drop increased. As a result, when the structure of the column substrate was more complicated, the change in the flow direction became larger, resulting in the larger pressure drop.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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No. | Ratio of Cross-Linker | Reactor Vessel for Polymerization Reaction | Reaction Temperature | Porosity ε | Pore Size Dp |
---|---|---|---|---|---|
M01 | 10% | SUS a pipe | 60 °C | 0.582 | 4.43 μm |
M02 | 25% | SUS a pipe | 60 °C | 0.593 | 4.28 μm |
M03 | 10% | SUS a pipe | 90 °C | 0.577 | 4.01 μm |
M04 | 10% | PEEK b tube | 60 °C | 0.613 | 4.65 μm |
M05 | 10% | PEEK b tube | 90 °C | 0.605 | 4.56 μm |
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Yamamoto, K.; Tajima, Y. Numerical Simulation of Fluid Dynamics in a Monolithic Column. Separations 2017, 4, 3. https://doi.org/10.3390/separations4010003
Yamamoto K, Tajima Y. Numerical Simulation of Fluid Dynamics in a Monolithic Column. Separations. 2017; 4(1):3. https://doi.org/10.3390/separations4010003
Chicago/Turabian StyleYamamoto, Kazuhiro, and Yuuta Tajima. 2017. "Numerical Simulation of Fluid Dynamics in a Monolithic Column" Separations 4, no. 1: 3. https://doi.org/10.3390/separations4010003