Publication Cover
Drying Technology
An International Journal
Volume 34, 2016 - Issue 9
507
Views
13
CrossRef citations to date
0
Altmetric
Original Articles

Interaction of droplets with porous structures: Pore network simulation of wetting and drying

, , &

References

  • Terrazas-Velrade, K.; Peglow, M.; Tsotsas, E. Kinetics of fluidized bed spray agglomeration for compact and porous particles. Chemical Engineering Science 2011, 66, 1866–1878.
  • Guo, B.; Fletcher, D.F.; Langrish, T.A.G. Simulation of the agglomeration in a spray using Lagrangian particle tracking. Applied Mathematical Modeling 2004, 28(3), 273–290.
  • Peglow, M.; Kumar, J.; Heinrich, S.; Warnecke, G.; Tsotsas, E.; Mörl, L.; Wolf, B. A generic population balance model for simultaneous agglomeration and drying in fluidized beds. Chemical Engineering Science 2007, 62, 513–532.
  • Terrazas-Velrade, K.; Peglow, M.; Tsotsas, E. Stochastic simulation of agglomerate formation in fluidized bed spray drying: A micro-scale approach. Chemical Engineering Science 2009, 64, 2631–2643.
  • Dornedde, M.; Peglow, M.; Tsotsas, E. A novel structure-tracking Monte Carlo algorithm for spray fluidized bed agglomeration. AIChE Journal 2012, 58, 3016–3029.
  • Hussain, M.; Peglow, M.; Tsotsas, E.; Kumar, J. Modeling of aggregation kernel using Monte Carlo simulations of spray fluidized bed agglomeration. AIChE Journal 2014, 60(3), 855–868.
  • Passandideh-Fard, K.; Qiao, Y.M.; Chandra, S.; Mostaghimi, J. Capillary effects during droplet impact on a solid surface. Physics of Fluids 1996, 8, 650–659.
  • Werner, S.R.I.; Jones, J.R.; Paterson, A.H.J., Archer, R.H.; Pearce, D.L. Droplet impact and spreading: Droplet formulation effects. Chemical Engineering Science 2007, 62, 2336–2345.
  • Alleborn, N.; Raszillier, H. Spreading and sorption of a droplet on a porous substrate. Chemical Engineering Science 2004, 59, 2071–2088.
  • Denesuk, M.; Smith, G.L.; Zelinski, B.J.J.; Kreidl, N.J.; Uhlmann, D.R. Capillary penetration of liquid droplets into porous materials. Journal of Colloid and Interface Science 1993, 158, 114–120.
  • Clarke, A.; Blake, T.D.; Carruthers, K.; Woodward, A. Spreading and imbibition of liquid droplets on porous surfaces. Langmuir 2002, 18, 2980–2984.
  • Davis, S.H.; Hocking, L.M. Spreading and imbibition of viscous liquid on a porous base, Part I. Physics of Fluids 1999, 11, 48–57.
  • Davis, S.H.; Hocking, L.M. Spreading and imbibition of viscous liquid on a porous base, Part II. Physics of Fluids 2000, 12, 1646–1655.
  • Markicevic, B.; Li, H.; Sikorski, Y.; Zand, A.R.; Sanders, M.; Navaz, H.K. Infiltration time and imprint shape of a sessile droplet imbibing porous medium. Journal of Colloid and Interface Science 2009, 336, 698–706.
  • Navaz, H.K.; Markicevic, B.; Zand, A.R.; Sikorski, Y.; Chen, E.; Sanders, M.; Terrence, G.D. Sessile droplet spread into porous substrates – Determination of capillary pressure using a continuum approach. Journal of Colloid and Interface Science 2008, 325, 440–446.
  • Perré, P.; Turner, I.W. A 3-D version of TransPore: A comprehensive heat and mass transfer computational model for simulating the drying. International Journal of Heat and Mass Transfer 1999, 42, 4501–4521.
  • Nowicki, S.C.; Davis, H.T.; Scriven, L.E. Microscopic determination of transport parameters in drying porous media. Drying Technology 1992, 10, 925–946.
  • Prat, M. Percolation model of drying under isothermal conditions in porous media. International Journal of Multiphase Flow 1995, 19, 691–704.
  • Metzger, T.; Tsotsas, E. Influence of pore size distribution on drying kinetics: A simple capillary model. Drying Technology 2005, 23, 1797–1809.
  • Metzger, T.; Irawan, A.; Tsotsas, E. Influence of pore structure on drying kinetics: A pore network study. AIChE Journal 2007, 53, 3029–3041.
  • Segura, L.A.; Toledo, P.G. Pore-level drying of isothermal drying of pore networks: Evaporation and viscous flow. Latin American Applied Research 2005, 35, 43–50.
  • Metzger, T.; Irawan, A.; Tsotsas, E. Isothermal drying of pore networks: Influence of friction for different pore structures. Drying Technology 2007, 25, 49–57.
  • Metzger, T.; Tsotsas, E. Viscous stabilization of drying front: Three-dimensional pore network simulations. Chemical Engineering Research and Design 2008, 86, 739–744.
  • Yiotis, A.G.; Boudouvis, A.G.; Stubos, A.K.; Tsimpanogiannis, I.N.; Yortsos, Y.C. The effect of liquid films on the drying of porous media. AIChE Journal 2004, 50, 2721–2737.
  • Vorhauer, N.; Wang, Y.J.; Kharaghani, A.; Tsortsas, E.; Prat, M. Drying with formation of capillary rings in a model porous medium. Transport in Porous Media 2015, 110(2), 197–223.
  • Pillai, K.M.; Prat, M.; Marcoux, M. A study on slow evaporation of liquids in a dual-porosity porous medium using square network model. International Journal of Heat and Mass Transfer 2009, 52, 1643–1656.
  • Kharaghani, A.; Metzger, T.; Tsotsas, E. A proposal for discrete modeling of mechanical effects during drying, combining pore networks with DEM. AIChE Journal 2011, 57(4), 872–885.
  • Sun, Y.; Kharaghani, A.; Tsotsas, E. Modeling droplet evolution on a porous particle as micro-scale process in fluidized bed spray drying. In Proceedings of 18th International Drying Symposium, Xiamen, China, November 11–15, 2012.
  • Sun, Y.; Kharaghani, A.; Metzger, T.; Müller, J.; Tsotsas, E. Lotion distribution in wet wipes investigated by pore network simulation and X-ray microtomography. Transport in Porous Media 2015, 107, 449–468.
  • Irawan, A. Isothermal drying of pore networks: influence of pore structure on drying kinetics. PhD thesis, Otto-von-Guericke-Universität, Magdeburg, 2006.
  • Sahimi, M. Flow and Transport in Porous Media and Fractured Rock, 2nd edn; Wiley-VCH: Weinheim, 2011.
  • Beckingham, L.E.; Peters, C.A.; Um, W.; Jones, K.W.; Lindquist, W.B. 2D and 3D imaging resolution trade-offs in quantifying pore throats for prediction of permeability. Advances in Water Resources 2013, 62, 1–12.
  • Al-Futaisi, A.; Patzek, T.W. Extension of Hoshen-Kopelman algorithm to non-lattice environments. Physica A 2003, 321, 665–678.
  • Metzger, T.; Irawan, A.; Tsotsas, E. Remarks on the paper Extension of Hoshen-Kopelman algorithm to non-lattice environments: by Al-Futaisi A, Patzek TW. Physica A 2003, 321, 665–678. Physica A 2006, 363, 558–560.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.