Acousto-modulation speckle correlometry of evolving foams: the influence of acoustic stimulation on foam aging dynamics
E.A. Isaeva1, A.A. Isaeva1, D.A. Zimnyakov1,2
1Yuri Gagarin State Technical University of Saratov, Saratov, Russia
2Institute of Precision Mechanics and Control, Russian Academy of Sciences, Saratov, Russia
Email: 27isaevaea@mail.ru

PDF
The experimental findings on the evolution of the structure of model samples of gas-liquid foams using the speckle correlometry method are presented. The experiments were carried out with low-frequency acoustic impact (at a frequency of 2 kHz) on the studied samples and in the absence of impact. The used mode of sounding the sample corresponds to a cyclic alternating change in excess external pressure within the area of interaction of the laser beam with the foam. Accounting for the relationship between the length of the sound wave and the characteristic dimensions of the interaction zone, one can conclude that the excess pressure is quasi-uniformly distributed across the interaction zone. In both cases it was found that there was a self-similar nature of evolution of the foam structure, in which the average size of gas cells in the foam increased over time according to a power law with an exponent equal to 0.5. At the same time, the acoustic impact leads to a significant increase of the velocity constant in the power law and a more rapid growth of correlation time of fluctuations in the intensity of laser radiation scattered by the foam compared to samples of unsounded foam as the studied samples age. The qualitative interpretation of the features observed in the experiment is discussed. Keywords: gas-liquid foams, structure evolution, multiple light scattering, speckle correlometry, acoustic impact.
  1. W. Thomson. Acta Math., 11, 121 (1887). DOI: 10.1007/BF02612322
  2. M.F. Ashby, A.G. Evans, N.A. Fleck, L.J. Gibson, J.W. Hutchinson, H.N.G. Wadley. Metal Foams: A Design Guide (Butterworth-Heinemann, Boston, 2000)
  3. J. Banhart. Prog. Mater. Sci., 46 (6), 559 (2001). DOI: 10.1016/S0079-6425(00)00002-5
  4. F. Garcia-Moreno. Materials, 9 (2), 85 (2016). DOI: 10.3390/ma9020085
  5. S.J. Hollister. Nat. Mater., 4 (7), 518 (2005). DOI: 10.1038/nmat1421
  6. D.W. Hutmacher. Biomaterials, 21 (24), 2529 (2000)
  7. J.J. Barry, H.S. Gidda, C.A. Scotchford, S.M. Howdle. Biomaterials, 25 (17), 3559 (2004). DOI: 10.1016/j.biomaterials.2003.10.022
  8. S. Schiavoni, F. Bianchi, F. Asdrubali. Renew. Sustain. Energy Rev., 62, 988 (2016). DOI: 10.1016/j.rser.2016.05.045
  9. N.V. Gama, A. Ferreira, A. Barros-Timmons. Materials, 11 (10), 1841 (2018). DOI: 10.3390/ma11101841
  10. T. Li, Y. Chen, X. Hu, Y. Li, L. Wang. J. Appl. Polym. Sci., 138 (45), 51280 (2021). DOI: 10.1002/app.51280
  11. D. Weaire, S. Hutzler. The Physics of Foams (Oxford University Press, Oxford, 1999)
  12. R. Lemlich. Ind. Eng. Chem. Fundam., 17 (2), 89 (1978). DOI: 10.1021/i160066a001
  13. R. Hohler, S. Cohen-Addad. J. Phys.: Condens. Matter, 17 (41), R1041 (2005). DOI: 10.1088/0953-8984/17/41/R01
  14. A. Saint-Jalmes. Soft Matter, 2 (10), 836 (2006). DOI: 10.1039/B606780H
  15. D. Langevin. Adv. Colloid Interface Sci., 275, 102077 (2020). DOI: 10.1016/j.cis.2019.102077
  16. D.J. Durian. Adv. Chem. Eng., 26, 1 (2001). DOI: 10.1016/S0065-2377(01)26003-2
  17. S. Hilgenfeldt, S.A. Koehler, H.A. Stone. Phys. Rev. Lett., 86 (20), 4704 (2001). DOI: 10.1103/PhysRevLett.86.4704
  18. S.A. Koehler, S. Hilgenfeldt, H.A. Stone. Langmuir, 16 (15), 6327 (2000). DOI: 10.1021/la9913147
  19. D.A. Zimnyakov, S.A. Yuvchenko, A.A. Isaeva, E.A. Isaeva, D.V. Tsypin. Colloids Surf., A, 579, 123693 (2019). DOI: 10.1016/j.colsurfa.2019.123693
  20. D.J. Pine, D.A. Weitz, P.A. Chaikin, E. Herbolzheimer. Phys. Rev. Lett., 60 (12), 1134 (1988). DOI: 10.1103/PhysRevLett.60.1134
  21. S. Cohen-Addad, R. Hohler. Phys. Rev. Lett., 86 (20), 4700 (2001). DOI: 10.1103/PhysRevLett.86.4700
  22. D.J. Durian, D.A. Weitz, D.J. Pine. Science, 252 (5006), 686 (1991). DOI: 10.1126/science.252.5006.686
  23. D.J. Durian. Phys. Rev. E, 51 (4), 3350 (1995). DOI: 10.1103/PhysRevE.51.3350
  24. D.J. Durian, D.A. Weitz, D.J. Pine. Phys. Rev. A, 44 (12), R7902 (1991). DOI: 10.1103/PhysRevA.44.R7902
  25. S. Gholizadeh. Procedia Structural Integrity, 1, 50 (2016). DOI: 10.1016/j.prostr.2016.02.008
  26. A. Vary. Material property characterization. In: P.O. Moore (ed.) Nondestructive Testing Handbook. Ultrasonic Testing (ASTM, Columbus, 2007), v. 7, p. 365
  27. D.W. Fitting, L. Adler. Ultrasonic spectral analysis for nondestructive evaluation (Plenum Press, NY., 1981), p. 354
  28. F. Chevillotte, C. Perrot. J. Acoustical Society of America, 142 (2), 1130 (2017). DOI: ff10.1121/1.4999058
  29. J. Pierre, B. Dollet, V. Leroy. Phys. Rev. Lett., 112 (14), 148307 (2014). DOI: 10.1103/PhysRevLett.112.148307
  30. F. Elias, J. Crassous, C. Derec, B. Dollet, W. Drenckhan, C. Gay, V. Leroy, C. No\^us, J. Pierre, A. Saint-Jalmes. Current Opinion in Colloid \& Interface Sci., 50, 101391 (2020). DOI: 10.1016/j.cocis.2020.101391
  31. C.Y. Ng, B. Yang, H. Park, L. Wang. Minerals Engineer., 184 (2), 107654 (2022). DOI: 10.1016/j.mineng.2022.107654
  32. S.V. Komarov, M. Kuwabara. ISIJ Int, 39, 1207 (1999)
  33. D.A. Zimnyakov, S.A. Yuvchenko, A.A. Isaeva, E.A. Isaeva, O.V. Ushakova. Opt. Spectr., 125 (5), 795 (2018). DOI: 10.1134/S0030400X18110371
  34. K. Feitosa, O.L. Halt, R.D. Kamien, D.J. Durian. Europhys. Lett., 76 (4), 683 (2006). DOI: 10.1209/epl/i2006-10304-5
  35. M. Pasquet, N. Galvani, A. Requier, S. Cohen-Addad, R. Hohler, O. Pitois, E. Rio, A. Salonen, D. Langevin. Soft Matter, 19 (31), 6267 (2023). DOI: 10.1039/D3SM00695A

Подсчитывается количество просмотров абстрактов ("html" на диаграммах) и полных версий статей ("pdf"). Просмотры с одинаковых IP-адресов засчитываются, если происходят с интервалом не менее 2-х часов.

Дата начала обработки статистических данных - 27 января 2016 г.

Publisher:

Ioffe Institute

Institute Officers:

Director: Sergei V. Ivanov

Contact us:

26 Polytekhnicheskaya, Saint Petersburg 194021, Russian Federation
Fax: +7 (812) 297 1017
Phone: +7 (812) 297 2245
E-mail: post@mail.ioffe.ru