Published November 10, 2017 | Version v1
Journal article

Numerical simulation of velocity and temperature fields in natural circulation loop

  • 1. Department of Thermal Physics, National Research University "Moscow Power Engineering Institute", Russia, 111250 Moscow, Krasnokazarmennaya, 14 (Russian Federation)

Description

Low flow natural circulation regimes are realized in many practical applications and the existence of the reliable engineering and design calculation methods of flows driven exclusively by buoyancy forces is an actual problem. In particular it is important for the analysis of start up regimes of passive safety systems of nuclear power plants. In spite of a long year investigations of natural circulation loops no suitable predicting recommendations for heat transfer and friction for the above regimes have been proposed for engineering practice and correlations for forced flow are commonly used which considerably overpredicts the real flow velocities. The 2D numerical simulation of velocity and temperature fields in circular tubes for laminar flow natural circulation with reference to the laboratory experimental loop has been carried out. The results were compared with the 1D modified model and experimental data obtained on the above loop. The 1D modified model was still based on forced flow correlations, but in these correlations the physical properties variability and the existence of thermal and hydrodynamic entrance regions are taken into account. The comparison of 2D simulation, 1D model calculations and the experimental data showed that even subject to influence of liquid properties variability and entrance regions on heat transfer and friction the use of 1D model with forced flow correlations do not improve the accuracy of calculations. In general, according to 2D numerical simulation the wall shear stresses are mainly affected by the change of wall velocity gradient due to practically continuous velocity profiles deformation along the whole heated zone. The form of velocity profiles and the extent of their deformation in its turn depend upon the wall heat flux density and the hydraulic diameter. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1742-6596/891/1/012037

Additional details

Publishing Information

Journal Title
Journal of Physics. Conference Series (Online)
Journal Volume
891
Journal Issue
1
Journal Page Range
[10 p.]
ISSN
1742-6596

Conference

Title
International Conference on Problems of Thermal Physics and Power Engineering
Acronym
PTPPE-2017
Dates
9-11 Oct 2017
Place
Moscow (Russian Federation)