Information Preservation Modeling of Rayleigh-Benard Transition from Thermal Conduction to Convection


Autoria(s): Zhang J(张俊); Fan J(樊菁)
Data(s)

2009

Resumo

Onset and evolution of the Rayleigh-Benard (R-B) convection are investigated using the Information Preservation (IP) method. The information velocity and temperature are updated using the Octant Flux Splitting (OFS) model developed by Masters & Ye based on the Maxwell transport equation suggested by Sun & Boyd. Statistical noise inherent in particle approaches such as the direct simulation Monte Carlo (DSMC) method is effectively reduced by the IP method, and therefore the evolutions from an initial quiescent fluid to a final steady state are shown clearly. An interesting phenomenon is observed: when the Rayleigh number (Ra) exceeds its critical value, there exists an obvious incubation stage. During the incubation stage, the vortex structure clearly appears and evolves, whereas the Nusselt number (Nu) of the lower plate is close to unity. After the incubation stage, the vortex velocity and Nu rapidly increase, and the flow field quickly reaches a steady, convective state. A relation of Nu to Ra given by IP agrees with those given by DSMC, the classical theory and experimental data.

Identificador

http://dspace.imech.ac.cn/handle/311007/25358

http://www.irgrid.ac.cn/handle/1471x/6788

Idioma(s)

英语

Publicador

Melville

Fonte

Rarefied Gas Dynamics. 26th International Symposium on Rarefied Gas Dynmaics (RGD26), Kyoto, JAPAN. JUN 20-JUL 25, 2008, pp.359-364.

Palavras-Chave #Hydrodynamic Instability #Rayleigh-Benard Flows #Dsmc #Ip Method #Rarefied-Gas Flows #Monte-Carlo Method #Statistical Simulation #Attractors
Tipo

会议论文