Title :
Numerical simulation of thermal discharges in crossflow
Author :
Paik, Joongcheol
Author_Institution :
Dept. of Civil Eng., Gangneung-Wonju Nat. Univ., Gangneung, South Korea
Abstract :
A three-dimensional computational fluid dynamic (CFD) model is developed for resolving the turbulent initial mixing of thermal discharges. To handle the huge difference of length scales between actual flow domain and relatively tiny diffuser, we employ the domain-decomposition approach with multi-level overset grids. A subgrid-scale eddy viscosity model with a simple Richardson-number correction for buoyancy effects is used for the turbulence closure. The governing equations are solved with a second-order-accurate, finite-volume, artificial compressibility approach. The evaluation test using experimental measurements for the development of thermally stratified shear flows in a laboratory channel shows that the CFD model works well in simulation of shear flows dominated by the buoyancy. The CFD model is applied for resolving the turbulent initial mixing of thermal discharges loaded from both a single-port diffuser in an artificial channel. The results demonstrate that the CFD model provides reasonable and satisfactory predictions of turbulent initial mixing of buoyant jets in different cross flow conditions and appears to well capture main features of the initial mixing controlled by the interplay of the ambient flow and thermal discharges.
Keywords :
channel flow; compressible flow; computational fluid dynamics; finite volume methods; flow simulation; heat transfer; jets; mixing; shear turbulence; stratified flow; Richardson-number; artificial channel flow; artificial compressibility approach; buoyancy effect; buoyant jet analysis; cross flow condition; domain-decomposition approach; finite-volume method; laboratory channel flow; numerical simulation; shear flow simulation; subgrid-scale eddy viscosity model; thermal discharge analysis; thermally stratified shear flow; three-dimensional computational fluid dynamic model; turbulent initial mixing process; Computational fluid dynamics; Discharges; Jacobian matrices; Load modeling; Marketing and sales; Numerical models; crossflow; mixing; numerical simulation; subgrid-scale model; thermal discharge;
Conference_Titel :
Communication Software and Networks (ICCSN), 2011 IEEE 3rd International Conference on
Conference_Location :
Xi´an
Print_ISBN :
978-1-61284-485-5
DOI :
10.1109/ICCSN.2011.6014906