Free Access
Math. Model. Nat. Phenom.
Volume 6, Number 1, 2011
Instability and patterns. Issue dedicated to the memory of A. Golovin
Page(s) 48 - 61
Published online 09 June 2010
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  2. A. M. Turing. The chemical basis of morphogenesis. Philos. Trans. R. Soc. London B, 237 (1952), 37–72. [CrossRef]
  3. R. Kapral and K. Showalter (Eds.). Chemical waves and patterns. Kluwer Academic Publishers, New York, 1995.
  4. L. M. Pismen. Patterns and Interfaces in dissipative dynamics. Springer Verlag, Berlin, 2006.
  5. Z. Dagan, L. M. Pismen. Marangoni waves induced by a multistable chemical reaction on thin liquid films. J. Coll. Interface Sci., 99 (1984), No. 1, 215–225. [CrossRef]
  6. L. M. Pismen. Composition and flow patterns due to chemo-Marangoni instability in liquid films. J. Coll. Interface Sci., 102 (1984), No. 1, 237–247. [CrossRef]
  7. A. Pereira, P. M. J. Trevelyan, U. Thiele, and S. Kalliadasis. Dynamics of a horizontal thin liquid film in the presence of reactive surfactants, Phys. Fluids, 19 (2007), No. 11, 112102. [CrossRef]
  8. L. Rongy, A. De Wit. Solitary Marangoni-driven convective structures in bistable chemical systems. Phys. Rev. E, 77 (2008), No. 4, 046310. [CrossRef]
  9. L. M. Pismen. Interaction of reaction-diffusion fronts and Marangoni flow on the interface of deep fluid. Phys. Rev. Lett., 78 (1997), No. 2, 382–385. [CrossRef]
  10. L. M. Pismen, J. Rubinstein. Motion of vortex lines in the Ginzburg–Landau model. Physica (Amsterdam) D, 47 (1991), No. 3, 353–360.
  11. R. L. Pego. Front migration in the nonlinear Cahn–Hilliard equation. Proc. Roy. Soc. Ln A, 422 No. 1863 (1989), 261–278. [CrossRef] [MathSciNet]

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