Mechanisms of unsteady mixing of heat carrier with its flowrate variation and flow swirling—I. Calculation methods and experimental study of transient processes

The results of experimental and theoretical studies of the unsteady mixing process of heat carrier in a helical tube bundle when heat carrier flowrate is increased and decreased are presented. In experiments, the axisymmetric nonuniformity of a heat release field was modeled and temperature fields o...

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Veröffentlicht in:International journal of heat and mass transfer 1998-02, Vol.41 (3), p.645-651
Hauptverfasser: Dzyubenko, B.V., Dreitser, G.A., Kalyatka, A.V.
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container_issue 3
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container_title International journal of heat and mass transfer
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creator Dzyubenko, B.V.
Dreitser, G.A.
Kalyatka, A.V.
description The results of experimental and theoretical studies of the unsteady mixing process of heat carrier in a helical tube bundle when heat carrier flowrate is increased and decreased are presented. In experiments, the axisymmetric nonuniformity of a heat release field was modeled and temperature fields of heat carrier were measured at the tube bundle cross-section. Theoretically, the temperature fields were calculated using the two-temperature flow model of a two-phase homogenized medium with a stationary solid phase. Effective turbulent transfer coefficients were determined from comparison of the experimental and predicted temperature fields of heat carrier. New generalizing relations are derived to calculate effective turbulent transfer coefficients used to close a system of equations describing unsteady thermal and hydraulic processes in such tube bundles. The physical phenomena that characterize the specific features of heat transfer from flow swirling in complex-geometry channels for different types of hydrodynamic unsteadiness are considered. Examples of calculation of transient processes, as applied to a vehicular nuclear reactor, are presented.
doi_str_mv 10.1016/S0017-9310(97)00185-3
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1879-2189
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source Elsevier ScienceDirect Journals Complete
subjects Channel flow
Heat transfer coefficients
Hydrodynamics
Mathematical models
Mixing
Swirling flow
Temperature measurement
Tubes (components)
Turbulent flow
Unsteady flow
title Mechanisms of unsteady mixing of heat carrier with its flowrate variation and flow swirling—I. Calculation methods and experimental study of transient processes
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