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Calculation studies of heat transfer in the flow of nanofluids

https://doi.org/10.25206/2588-0373-2023-7-3-46-52

EDN: IDJYDF

Abstract

This research delves into the study of heat transfer in nanofluids, which are specialized fluids containing nanoparticles. The investigation focuses on understanding crucial factors affecting heat transfer in nanofluids, such as thermal conductivity, viscosity, flow patterns, and density. Both experimental and computational methods are employed to explore how various nanofluid compositions perform in different scenarios. The outcomes of this study contribute to an improved comprehension of nanofluid behavior and its potential applications in enhancing heat transfer processes.

About the Authors

E. N. Slobodina
Omsk State Technical University
Russian Federation

Slobodina Ekaterina Nikolaevna, Candidate of Technical Sciences, Associate Professor of Heat Power Engineering Department

ResearcherID: R-7340-2016

Omsk, Mira Ave., 11, 644050



I. A. Stepashkin
Omsk State Technical University
Russian Federation

Stepashkin Ivan Alexandrovich, Senior Lecturer of Heat Power Engineering Department

AuthorID (RSCI): 948077

AuthorID (SCOPUS): 57214754518

Omsk, Mira Ave., 11, 644050



D. V. Kovalenko
Omsk State Technical University
Russian Federation

Kovalenko Dmitry Valerievich, Senior Lecturer of Heat Power Engineering Department

AuthorID (RSCI): 901108

AuthorID (SCOPUS): 57193410109

ResearcherID: R-7414-2017

Omsk, Mira Ave., 11, 644050



A. G. Mikhailov
Omsk State Technical University
Russian Federation

Mikhailov Andrey Garrievich, Candidate of Technical Sciences, Associate Professor, Associate Professor of Heat Power Engineering Department

AuthorID (RSCI): 385534

AuthorID (SCOPUS): 56503044200

Omsk, Mira Ave., 11, 644050



E. A. Rogachev
Omsk State Technical University
Russian Federation

Rogachev Evgeny Anatolievich, Candidate of Technical Sciences, Associate Professor of Physics Department

AuthorID (SCOPUS): 56503848300

ResearcherID: AAS-1459-2020

Omsk, Mira Ave., 11, 644050



References

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9. Slobodina E. N., Mikhailov A. G., Gass E. A. Eksperimental’nyye i raschetnyye issledovaniya protsessa kipeniya nanozhidkosti [Experimental and computational studies of the nanofluidic boiling process] // Izvestiya Transsiba. Journal of Transsib Railway Studies. 2023. No. 1 (53). P. 103–109. (In Russ.).

10. Minakov A. V., Rudjak V. Ya., Guzei D. V. [et al.]. Izmereniye koeffitsiyenta teplootdachi nanozhidkosti na osnove vody i chastits oksida medi [Measurement of the heat transfer coefficient of a nanofluid based on water and copper oxide particles in a cylindrical channel] // Teplofizika Vysokikh Temperatur. High Temperature. 2015. Vol. 53, no. 2. P. 256–263. (In Russ.).


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For citations:


Slobodina E.N., Stepashkin I.A., Kovalenko D.V., Mikhailov A.G., Rogachev E.A. Calculation studies of heat transfer in the flow of nanofluids. Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering. 2023;7(3):46-52. (In Russ.) https://doi.org/10.25206/2588-0373-2023-7-3-46-52. EDN: IDJYDF

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ISSN 2588-0373 (Print)
ISSN 2587-764X (Online)