Numerical model simulation of atmospheric coolant plumes
Description
The effect of humid atmospheric coolants on the atmosphere is simulated by means of a three-dimensional numerical model. The atmosphere is defined by its natural vertical profiles of horizontal velocity, temperature, pressure and relative humidity. Effluent discharge is characterised by its vertical velocity and the temperature of air satured with water vapour. The subject of investigation is the area in the vicinity of the point of discharge, with due allowance for the wake effect of the tower and buildings and, where application, wind veer with altitude. The model equations express the conservation relationships for mometum, energy, total mass and water mass, for an incompressible fluid behaving in accordance with the Boussinesq assumptions. Condensation is represented by a simple thermodynamic model, and turbulent fluxes are simulated by introduction of turbulent viscosity and diffusivity data based on in-situ and experimental water model measurements. The three-dimensional problem expressed in terms of the primitive variables (u, v, w, p) is governed by an elliptic equation system which is solved numerically by application of an explicit time-marching algorithm in order to predict the steady-flow velocity distribution, temperature, water vapour concentration and the liquid-water concentration defining the visible plume. Windstill conditions are simulated by a program processing the elliptic equations in an axisymmetrical revolution coordinate system. The calculated visible plumes are compared with plumes observed on site with a view to validate the models
Abstract (French)
L'impact des refrigerants atmospheriques de type humide sur l'atmosphere est simule au moyen d'un modele numerique tridimensionel. L'atmosphere est definie par ses profils verticaux naturels de vitesses horizontales, de temperature, de pression et d'humidite relative. Le rejet est caracterise par la vitesse verticale et la temperature de l'air sature en vapeur d'eau. Le domaine d'etude est le voisinage des rejets ou les effets de sillage de la tour et des batiments et eventuellement la rotation du vent avec l'altitude sont pris en compte. Les equations du modele expriment les lois de conservation de quantite de mouvement, d'energie, de masse totale, de masse d'eau, pour un fluide incompressible obeissant aux hypotheses de Boussinesq. La condensation est representee par un modele thermodynamique simple et les flux turbulents sont modelises en introduisant des viscosites et diffusivites turbulentes deduites de mesures sur site ou en veine hydraulique. Le probleme tridimensionnel exprime en fonction des variables primitives, (u, v, w, p) est regi par un systeme d'equations de type elliptique que l'on resoud numeriquement selon un algorithme explicite avec variable d'evolution en temps pour obtenir en regime permanent les champs de vitesse, temperature, concentration en vapeur d'eau et le champ de concentration en eau liquide qui definit le panache visible. La situation de vent nul est simulee par un programme traitant les equations de type elliptique dans un systeme de coordonnee axisymetriques de revolution. Les panaches visibles calcules sont compares a des panaches observes in situ, de facon a permettre une validation des modelesAdditional details
Additional titles
- Original title (French)
- Modelisation numerique des panaches d'aerorefrigerant
Publishing Information
- Journal Title
- Bull. Dir. Etud. Rech., Ser. A
- Journal Issue
- no.2
- Series
- Bull. Dir. Etud. Rech., Ser. A.
- ISSN
- 0013-449X
INIS
- Country of Publication
- France
- Country of Input or Organization
- France
- INIS RN
- 11570453
- Subject category
- S61: RADIATION PROTECTION AND DOSIMETRY; S22: GENERAL STUDIES OF NUCLEAR REACTORS;
- Resource subtype / Literary indicator
- Thesis
- Descriptors DEI
- ALGORITHMS; CONVECTION; COOLING TOWERS; DIFFUSION; EARTH ATMOSPHERE; FLOW MODELS; FLOW RATE; MASS TRANSFER; MOTION; PLUMES; SIMULATION; SPATIAL DISTRIBUTION; THERMAL POWER PLANTS; THREE-DIMENSIONAL CALCULATIONS; TURBULENCE; VELOCITY; WEATHER
- Descriptors DEC
- DISTRIBUTION; ENERGY TRANSFER; HEAT TRANSFER; MATHEMATICAL MODELS; POWER PLANTS