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Breakup of small aggregates driven by turbulent hydrodynamical stress

Matthaus U. Babler1, Luca Biferale2, and Alessandra S. Lanotte3

  • 1Department of Chemical Engineering and Technology, Royal Institute of Technology, S-10044 Stockholm, Sweden
  • 2Department of Physics and Istituto Nazionale di Fisica Nucleare (INFN), University of Rome Tor Vergata, Via della Ricerca Scientifica 1, I-00133 Roma, Italy
  • 3The Institute of Atmospheric Sciences and Climate of the National Research Council of Italy (ISAC-CNR), Strada Provinciale Lecce-Monteroni, and Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Lecce, I-73100 Lecce, Italy

Phys. Rev. E 85, 025301(R) – Published 3 February, 2012

DOI: https://doi.org/10.1103/PhysRevE.85.025301

Abstract

The breakup of small solid aggregates in homogeneous and isotropic turbulence is studied theoretically and by using direct numerical simulations at high Reynolds number, Reλ400. We show that turbulent fluctuations of the hydrodynamic stress along the aggregate trajectory play a key role in determining the aggregate mass distribution function. The differences between turbulent and laminar flows are discussed. A definition of the fragmentation rate is proposed in terms of the typical frequency at which the hydrodynamic stress becomes sufficiently high to cause breakup along each Lagrangian path. We also define an Eulerian proxy of the real fragmentation rate, based on the joint statistics of the stress and its time derivative, which should be easier to measure in any experimental setup. Both our Eulerian and Lagrangian formulations define a clear procedure for the computation of the mass distribution function due to fragmentation. Contrary, previous estimates based only on single point statistics of the hydrodynamic stress exhibit some deficiencies. These are discussed by investigating the evolution of an ensemble of aggregates undergoing breakup and aggregation.

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References (14)

  1. G. Falkovich, A. Fouxon, and M. G. Stepanov, Nature (London) 419, 151 (2002); J. Bec, L. Biferale, M. Cencini, A. S. Lanotte, and F. Toschi, J. Fluid Mech. 646, 527 (2010); J. Chun, D. L. Koch, S. L. Rani, A. Ahluwalia, and L. R. Collins, ibid. 536, 219 (2005).
  2. J. Bec, L. Biferale, A. S. Lanotte, A. Scagliarini, and F. Toschi, J. Fluid Mech. 645, 497 (2010).
  3. M. Soos, A. S. Moussa, L. Ehrl, J. Sefcik, H. Wu, and M. Morbidelli, J. Colloid Interface Sci. 319, 577 (2008); A. Zaccone, M. Soos, M. Lattuada, H. Wu, M. U. Bäbler, and M. Morbidelli, Phys. Rev. E 79, 061401 (2009); V. Becker, E. Schlauch, M. Behr, and H. Briesen, J. Colloid Interface Sci. 339, 362 (2009).
  4. X. Cheng, J. H. McCoy, J. N. Israelachvili, and I. Cohen, Science 333, 1276 (2011); E. Brown, N. A. Forman, C. S. Orellana, H. Zhang, B. Maynor, D. Betts, J. M. DeSimone, and H. M. Jaeger, Nat. Mater. 9, 220 (2010).
  5. A. B. Burd and G. A. Jackson, Annu. Rev. Mater. Sci. 1, 65 (2009); R. Wengeler, F. Wolf, N. Dingenouts, and H. Nirschl, Langmuir 23, 4148 (2007); C. Selomulya, G. Bushell, R. Amal, and T. D. Waite, ibid. 18, 1974 (2002).
  6. M. U. Bäbler, M. Morbidelli, and J. Bałdyga, J. Fluid Mech. 612, 261 (2008).
  7. R. C. Sonntag and W. B. Russel, J. Colloid Interface Sci. 113, 399 (1986).
  8. R. Benzi, L. Biferale, G. Paladin, A. Vulpiani, and M. Vergassola, Phys. Rev. Lett. 67, 2299 (1991).
  9. M. L. Eggersdorfer, D. Kadau, H. J. Herrmann, and S. E. Pratsinis, J. Colloid Interface Sci. 342, 261 (2010); Y. M. Harshe, M. Lattuada, and M. Soos, Langmuir 27, 5739 (2011).
  10. B. Luthi, A. Tsinober, and W. Kinzelbach, J. Fluid Mech. 528, 87 (2005).
  11. V. I. Loginov, J. Appl. Mech. Tech. Phys. 26, 509 (1985).
  12. G. Lindgren, Lectures on Stationary Stochastic Processes (Lund University, Lund, Sweden, 2006).
  13. F. Family, P. Meakin, and J. M. Deutch, Phys. Rev. Lett. 57, 727 (1986); C. M. Sorensen, H. X. Zhang, and T. W. Taylor, ibid. 59, 363 (1987).
  14. M. U. Babler and M. Morbidelli, J. Colloid Interface Sci. 316, 428 (2007).

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