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Articles

Simulation of the solid particles behavior in 3D stirred tank using CFD-DEM coupling approach

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References

  • Burman, B. C. 1980. A discrete numerical-model for granular assemblies. Géotechnique 30:331–4.
  • Delacroix, B., J. Rastoueix, L. Fradette, F. Bertrand, and B. Blais. 2021. CFD-DEM simulations of solid-liquid flow in stirred tanks using a non-inertial frame of reference. Chemical Engineering Science 230:116137. doi: 10.1016/j.ces.2020.116137.
  • Eng, M., and A. Rasmuson. 2015. Large Eddy Simulation of the influence of solids on macro instability frequency in a stirred tank. Chemical Engineering Journal 259:900–10. doi: 10.1016/j.cej.2014.08.056.
  • Ergun, S. 1952. Fluid flow through packed columns. Journal of Materials Science and Chemical Engineering 48:89–94.
  • Grenville, R. K., J. J. Giacomelli, and D. Brown. 2016. Suspension of solid particles in vessels agitated by Rushton turbine imperllers. Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers Part A 109:730–733.
  • Hu, X. F., A. D. Ilgun, A. Passalacqua, R. O. Fox, F. Bertola, M. Milosevic, and F. Visscher. 2021. CFD simulations of stirred-tank reactors for gas-liquid and gas-liquid-solid systems using OpenFOAM (R). International Journal of Chemical Reactor Engineering 19 (2):193–207. doi: 10.1515/ijcre-2019-0229.
  • Issa, R., J. Y. Luo, and D. Gosman. 1994. Prediction of impeller induced flows in mixing vessels using multiple frames of reference. 4th European Conf. on Mixing, IMechE Symposium Series No 136.
  • Jahoda, M., M. Moštĕk, A. Kukuková, and V. Machoň. 2007. CFD modelling of liquid homogenization in stirred tanks with one and two impellers using large eddy simulation. Chemical Engineering Research and Design 85 (5):616–25. doi: 10.1205/cherd06183.
  • Jaworski, Z., W. Bujalski, N. Otomo, and A. W. Nienow. 2000. CFD study of homogenization with dual rushton turbines—Comparison with experimental results: Part I: Initial studies. Chemical Engineering Research and Design 78 (3):327–33. doi: 10.1205/026387600527437.
  • Kr, A., A. Ml, B. Dw, B. Hjb, and A. Rs. 2020. 3D flow simulation of a baffled stirred tank for an assessment of geometry simplifications and a scale-adaptive turbulence model. Chemical Engineering Science 116262. doi:10.1016/j.ces.2020.116262.
  • Lane, G. L., M. P. Schwarz, and G. M. Evans. 2000. Comparison of CFD methods for modelling of stirred tanks. 10th European Conference on Mixing, 273–80.
  • Liang, B. M., X. L. Zeng, M. L. Liang, and L. N. Wei. 2009. Prediction of investment supply scale for higher education of China based on Levengerg-Marquardt algorithm. Journal of Guangxi University (Natural Science Edition) 35(4):635–639.
  • Liu, B., Z. Wu, G. Yin, and J. Liu. 2018. Simulation analysis of the pressure characteristics of two-phase flow in feeding device based on particle collision. Modern Manufacturing Engineering 450 (3):93–98.
  • Oesterlé, B., and T. B. Dinh. 1998. Experiments on the lift of a spinning sphere in a range of intermediate Reynolds numbers. Experiments in Fluids 25 (1):16–22. doi: 10.1007/s003480050203.
  • Schweikart, J. 2004. Handbook of industrial mixing: Science and practice. Hoboken, NJ: Wiley-Interscience, Cop.
  • Shao, T., Y. Hu, W. Wang, Y. Jin, and Y. Cheng. 2013. Simulation of solid suspension in a stirred tank using CFD-DEM coupled approach. Chinese Journal of Chemical Engineering 21 (10):1069–81. doi: 10.1016/S1004-9541(13)60580-7.
  • Tamburini, A., A. Cipollina, and G. Micale. 2011. CFD simulation of solid liquid suspensions in baffled stirred vessels below complete suspension speed. Learning Management Systems 24:1435–40.
  • Wadnerkar, D., M. O. Tade, V. K. Pareek, and R. P. Utikar. 2016. CFD simulation of solid–liquid stirred tanks for low to dense solid loading systems. Particuology 29:16–33. doi: 10.1016/j.partic.2016.01.012.
  • Wadnerkar, D., R. P. Utikar, M. O. Tade, and V. K. Pareek. 2012. CFD simulation of solid-liquid stirred tanks. Advanced Powder Technology 23 (4):445–53. doi: 10.1016/j.apt.2012.03.007.
  • Wen, C. Y. 1966. Mechanics of fluidization. The Chemical Engineering Progress Symposium Series 162:100–11.
  • Yan, X. H., X. Chen, and L. I. Hua-Yu. 2015. 3D k-omega SST modeling of open channel flow with contraction. Water Conservancy Science and Technology and Economy 21 (11):12–14.

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