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 TVT, 2013, Volume 51, Issue 6, Pages 955–957 (Mi tvt166)

Short Communications

Experimental study of aerosol oscillations in an open tube in the shock-free wave mode

D. A. Gubaidullin, R. G. Zaripov, L. A. Tkachenko

Institute of Mechanics and Engineering, Russian Academy of Sciences, Kazan, Russia

Abstract: Forced longitudinal oscillations of a finely dispersed aerosol in an open tube in the shock-free wave mode near the first fundamental frequency have been studied experimentally. The time dependences of the numerical concentration of the aerosol droplets have been obtained. The effect of the frequency and amplitudes of the excitation on the aerosol clearing, which consists of coagulation, sedimentation on the tube walls, and partial ejection of the aerosol droplets from the open end of the tube, has been studied. It has been shown that the process of aerosol clearing occurs $6$$12$ times more efficiently than natural sedimentation.

DOI: https://doi.org/10.7868/S0040364413060148

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English version:
High Temperature, 2013, 51:6, 873–875

Bibliographic databases:

UDC: 532.529:534.2

Citation: D. A. Gubaidullin, R. G. Zaripov, L. A. Tkachenko, “Experimental study of aerosol oscillations in an open tube in the shock-free wave mode”, TVT, 51:6 (2013), 955–957; High Temperature, 51:6 (2013), 873–875

Citation in format AMSBIB
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Citing articles on Google Scholar: Russian citations, English citations
Related articles on Google Scholar: Russian articles, English articles

This publication is cited in the following articles:
1. D. A. Gubaidullin, R. G. Zaripov, L. A. Tkachenko, “Resonance oscillations of an aerosol in a tube with a diaphragm in the shock free-wave mode”, High Temperature, 52:6 (2014), 895–899
2. A. Yu. Varaksin, “Clusterization of particles in turbulent and vortex two-phase flows”, High Temperature, 52:5 (2014), 752–769
3. Gubaidullin D.A. Zaripov R.G. Tkachenko L.A., “Oscillations of Aerosols in the Tubes Near To Resonances”, Vi Scientific Technical Conference on Low-Temperature Plasma During the Deposition of Functional Coatings, Journal of Physics Conference Series, 567, IOP Publishing Ltd, 2014, 012021
4. A. Yu. Varaksin, “Effect of particles on carrier gas flow turbulence”, High Temperature, 53:3 (2015), 423–444
5. A. Yu. Varaksin, “Concentrated air and fire vortices: Physical modeling (a review)”, High Temperature, 54:3 (2016), 409–427
6. D. A. Gubaidullin, R. G. Zaripov, L. A. Tkachenko, “Spherical particle dynamics at oscillations in tubes in the shock wave field”, High Temperature, 54:6 (2016), 867–872
7. D. A. Gubaidullin, R. G. Zaripov, L. A. Tkachenko, L. R. Shaidullin, “Experimental study of coagulation and sedimentation of gas-particle suspension in closed tube under transfer to the shock-wave regime”, High Temperature, 55:3 (2017), 463–465
8. D. A. Gubaidullin, R. G. Zaripov, L. A. Tkachenko, “Experimental investigation of resonance oscillations of aerosol in tubes at the transition to the shock-wave mode”, Dokl. Phys., 62:7 (2017), 363–365
9. D. A. Gubaidullin, R. G. Zaripov, L. A. Tkachenko, L. R. Shaidullin, “The dynamics of an aerosol in an open tube under oscillations of various intensities near resonance”, High Temperature, 56:1 (2018), 146–148
10. D. Gubaidullin, R. Zaripov, L. Tkachenko, “Dynamics of nonlinear waves in the tubes filled with aerosol”, International Conference on Engineering Vibration (ICOEV 2017), Matec Web of Conferences, 148, ed. E. Manoach, S. Stoykov, M. Wiercigroch, EDP Sciences, 2018, UNSP 01002
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