Physical and chemical aspects of the study of clusters, nanostructures and nanomaterials
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Dependence of the displacement of nanoparticles on channels in a jet bubbler

A.Yu. Ataeva

North Caucasian Institute of Mining and Metallurgy (State Technological University)

DOI: 10.26456/pcascnn/2023.15.622

Short communication

Abstract: The work is devoted to an experimental study of the behavior of bubbles when capturing pulverized materials with nanoparticles in the course of colliding of gas-liquid jets in a bubbling layer. The article discusses the use of channels in a jet bubbler and the dependence for detecting horizontal movement of bubbles with nanoparticles in them. The purpose of this stage of research is to study the behavior of gas-liquid jets when exiting without a guide channel and through a guide channel. The results of experiments conducted on the patented design of the jet bubbler are analyzed. The article presents the results of experiments conducted to study the shapes and sizes of formed gas bubbles. The graphs constructed after processing the frames of the kinogram according to the data of the experiments are given. On the basis of preliminary tests, the features of using channels to create the jet collisions in an experimental setup to increase the range of captured solid particles, including nanoparticles, are substantiated.

Keywords: ecosystem, dust and gas separator, nanoparticles, channel, wet dust collection, bubbling

  • Angela Yu. Ataeva – Ph. D., Docent, Department «Technological Machines and Equipment», Director of the Center of Collective Use of Scientific Equipment, North Caucasian Institute of Mining and Metallurgy (State Technological University)

Reference:

Ataeva, A.Yu. Dependence of the displacement of nanoparticles on channels in a jet bubbler / A.Yu. Ataeva // Physical and chemical aspects of the study of clusters, nanostructures and nanomaterials. — 2023. — I. 15. — P. 622-628. DOI: 10.26456/pcascnn/2023.15.622. (In Russian).

Full article (in Russian): download PDF file

References:

1. Ataeva A.Yu., Sverdlik G.I., Kambolov D.A., Ataev A.R. Sovremennye metody granulometricheskogo analiza pylevidnyh materialov, soderzhashchih nanochasticy [Modern methods of granulometric analysis of dusted materials containing nanoparticles], Fiziko-khimicheskie aspekty izucheniya klasterov, nanostruktur i nanomaterialov [Physical and chemical aspects of the study of clusters, nanostructures and nanomaterials], 2018, issue 12, pp. 44-52. DOI: 10.26456/pcascnn/2018.10.044. (In Russian).
2. Shilyaev M.I. Metody rascheta pyleulavlivayushchih sistem [Calculation methods for dust collection systems], Moscow, Forum Publ., 2014, 320 p. (In Russian).
3. Shvydkiy V.S., Ladygichev M.G. Ochistka gazov: Spravochnoye izdaniye [Purification of gases: Reference book], Moscow, Teploenergetik Publ., 2002, 640 p. (In Russian).
4. Geyyer V.G., Dulin V.S., Zarya A.N. Gidravlika i gidroprivod: uchebnik dlya vuzov [Hydraulics and hydraulic drive: textbook for universities], Moscow Nedra Publ., 1991, 331 p. (In Russian).
5. Sverdlik, G.I., Ataeva A.Yu., Kambolov D.A., Ataev A.R. Razrabotka klassifikacii barbotazhnyh apparatov i ih vybor dlya ulavlivaniya nanochastic pyli [Classification and selection of barbage equipment for collecting dust nanoparticles], Fiziko-khimicheskie aspekty izucheniya klasterov, nanostruktur i nanomaterialov [Physical and chemical aspects of the study of clusters, nanostructures and nanomaterials], 2018, issue 10, pp. 566-575. DOI: 10.26456/pcascnn/2018.10.566. (In Russian).
6. Sverdlik, G.I., Vickrebenets A.S., Maxsimov R.N., Ataeva A.Y. Issledovanie parametrov dlya polucheniya pennogo rezhima v strujnom barbotere [Research of parameters of a foam in the jet regime bubbler], Fizikokhimicheskie aspekty izucheniya klasterov, nanostruktur i nanomaterialov [Physical and chemical aspects of the study of clusters, nanostructures and nanomaterials], 2017, issue 9, pp. 430-434. DOI: 10.26456/pcascnn/2017.9.430. (In Russian).
7. Sverdlik G.I., Vyskrebenets A.S., Ataeva A.Yu. Raspredelitel'naya tarelka massoobmennogo apparata dlya mokroj ochistki gaza [Distribution tray of mass transfer apparatus for wet gas cleaning]. Patent RF, no. 2303479, 2007. (In Russian).
8. Ramm, V.M. Absorbtsiya gazov [Gas absorption], 2nd ed., Moscow, Khimiya Publ., 1976, 656 p. (In Russian).
9. Temam R. Navier–Stokes equations: theory and numerical analysis, AMS eBooks, Bloomington, Indiana University, AMS Chelsea Publishing, 1984, vol. 343, 408 p. DOI: 10.1090/chel/343.
10. Doshi P., Cohen I., Zhang W.W. et al. Persistence of memory in drop breakup: the breakdown of universality, Science, 2003, vol. 302, issue 5648, pp. 1185-1188. DOI: 10.1126/science.1089272.
11. Keim N.C., Møller P., Zhang W.W., Nagel S.R. Destruction of air bubbles in water: memory and violation of cylindrical symmetry, Physical Review Letters, 2006, vol. 97, issue 14, pp. 144503-1-144503-4. DOI: 10.1103/PhysRevLett.97.144503.

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