CFD simulations of stirred-tank reactors for gasliquid and gas-liquid-solid systems using OpenFOAM®

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Abstract

An open-source CFD software OpenFOAM® is used to simulate two multiphase stirred-tank reactors relevant to industrial processes such as slurry polymerization and fuel production. Gas-liquid simulations are first performed in a single-impeller stirred-tank reactor, studied experimentally by Ford, J. J., T. J. Heindel, T. C. Jensen, and J. B. Drake. 2008. "X-Ray Computed Tomography of a Gas-Sparged Stirred-Tank Reactor." Chemical Engineering Science 63: 2075-85. Three impeller rotation speeds (200, 350 and 700 rpm) with three different bubble diameters (0.5, 1.5 and 2.5 mm) are investigated. Flow patterns compared qualitatively to those from experiments. Compared to the experimental data, the simulations are in relatively good agreement for gas holdup in the reactor. The second multiphase system is a multiimpeller stirred-tank reactor, studied experimentally by Shewale, S. D., and A. B. Pandit. 2006. "Studies in Multiple Impeller Agitated Gas-Liquid Contractors." Chemical Engineering Science 61: 486-504. Gas-liquid simulations are performed at two impeller rotation speeds (3.75 and 5.08 RPS). The simulated flow patterns agree with published pictures from the experiments. Gas-liquid-solid simulations of the multi-impeller stirred-tank reactor are also carried out at impeller rotation speed 5.08 RPS. The addition of solid particles with a volume fraction characteristic of slurry reactors changes the flow pattern significantly. The bottom Rushton turbine becomes flooded, while the upper pitched-blade downflow turbines present a radial-pumping flow pattern instead of downpumping. Nonetheless, the solid phase has a similar flow pattern to the liquid phase, indicating that the particles modify the effective density of the fluid.

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Hu, X., Ilgun, A. D., Passalacqua, A., Fox, R. O., Bertola, F., Milosevic, M., & Visscher, F. (2021). CFD simulations of stirred-tank reactors for gasliquid and gas-liquid-solid systems using OpenFOAM®. International Journal of Chemical Reactor Engineering, 19(2), 193–207. https://doi.org/10.1515/ijcre-2019-0229

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