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- W312452444 abstract "Results and the procedure of an experimental investigation of heat transfer in combination with highfrequency thermoacoustic self-oscillations of the pressure of toluene, tlir < tin, tw/tm 1.15-1.90 are presented. A criterial heat transfer equation in a vast region of excitation of thermoacoustic pressure selfoscillations is proposed, and the boundary for the onset of the development of the oscillatory process is .found. In the past decade, the number of reports on investigating heat transfer at supercritical pressures (SCPs) accompanied by high-frequency (HF) thermoacoustic self-oscillations (TASOs) of the pressure of the heat-transfer agent has decreased. In spite of the topicality of the problem of the reliability of heat-exchange apparatuses and the search for new efficient methods of intensification of heat transfer, the laminar re, me at SCPs is the least studied. The investigations are limited to several works [1-4 ] in which the heat transfer is accompanied by TASOs of the pressure for small Reynolds numbers. The possibility of energy transferring efficiently with small losses and the use of nonstandard methods of intensification and optimum control of heat-transfer processes seem very promising. A significant increase in the heat-transfer coefficient and, consequently, an increase in the heat-transfer rate with a fixed density of the heat flux due to realization of efficient regimes and organization of pulsating oscillations or initiation of powerful effects of thermoacoustic self-oscillations open up new ways of solving the problem of heat transfer at SCPs. The known investigations of SCP heat transfer cover mainly the near-critical region of variation in the" @default.
- W312452444 created "2016-06-24" @default.
- W312452444 creator A5066224193 @default.
- W312452444 date "1999-01-01" @default.
- W312452444 modified "2023-09-27" @default.
- W312452444 title "HEAT T RANSFER T O A LAMINAR F LOW O F TOLUENE O F S UPERCRITICAL P RESSURE I N T HE REGION O F D EVELOPMENT O F H IGH-FREQUENCY THERMOACOUSTIC I NSTABILITY" @default.
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