SST k-ω-kp Two-Phase Turbulence Model and Its Application in Numerical Simulation of Wet Steam Flow with Condensation
|更新时间:2025-12-08
|
SST k-ω-kp Two-Phase Turbulence Model and Its Application in Numerical Simulation of Wet Steam Flow with Condensation
Vol. 41, Issue 5, Pages: 526-529+584(2007)
作者机构:
西安交通大学能源与动力工程学院,西安,710049
作者简介:
基金信息:
DOI:
CLC:O354;TK262
Online First:10 May 2007,
Published:2007
稿件说明:
移动端阅览
吴晓明, 李国君, 丰镇平, et al. SST k-ω-kp Two-Phase Turbulence Model and Its Application in Numerical Simulation of Wet Steam Flow with Condensation[J]. 2007, 41(5): 526-529+584.
DOI:
吴晓明, 李国君, 丰镇平, et al. SST k-ω-kp Two-Phase Turbulence Model and Its Application in Numerical Simulation of Wet Steam Flow with Condensation[J]. 2007, 41(5): 526-529+584.DOI:
SST k-ω-kp Two-Phase Turbulence Model and Its Application in Numerical Simulation of Wet Steam Flow with Condensation
A two-fluid model of wet steam flow with condensation was established firstly
in which the velocity slip and coupling between the steam and liquid phases and the turbulent diffusion were considered. Then based on the transport equation theory of particle's turbulent kinetic energy
the SST k-ω-k
p
two-phase turbulence model was derived from the SST k-ω model
which behaves well in numerical simulation of single-phase turbulent flow. In this model
some concepts of friction fluid for the liquid phase were adopted such as viscosity
thermal conductivity and diffusion coefficient. The simulation result of wet steam flow with spontaneous condensation in a two-dimensional cascade indic
ates that the present model behaves well and is obviously superior to the single-fluid model. In particular
the pressure distribution simulation is more precise on the suction surface. The dynamic characteristics of the two-phase flow and the parameter distribution of liquid phase predicted by the present numerical simulation need to be verified by further experiment.
关键词
Keywords
references
Crowe C T, Sharma M P, Stock D E. The particle-source-in-cell(PSIC)method for gas-droplet flows[J]. Fluid Eng, 1977, 99(2): 325-332.
Gosman A D, Ioannides E. Aspects of computer simulation of liquid-fuelled combustion[C]∥ AIAA 19th Aerospace Science Meeting. St Louis: McGraw-Hill, 1981: 81.
Soo S L. Fluid dynamics of multiphase systems[M]. Mass: Blaisdell Pub. Co., 1967.
Menter F R. Two-equation eddy viscosity turbulence models for engineering applications[J]. AIAA J, 1994, 32(8): 1598-1605.
Bakhtar F, Ebrahimi M, Webb R A. On the performance of a cascade of turbine rotor tip section blading in nucleating steam:part 1 [J]. Proc Instn Mech Engrs: Part C, 1995, 209(2):115-124.
Bakhtar F, Mahpeykar M R. On the performance of a cascade of turbine rotor tip section blading in nucleating steam: theoretical treatment[J]. Proc Instn Mech Engrs: Part C, 1997, 211(3):195-210.
Study of the Mechanism of Electrostatic Accumulation and Current Density Distribution Characteristics During Liquid Hydrogen Pipeline Transportation
Numerical Simulation of Space Charge Distribution Characteristics of Polyimide Materials under X-Ray Irradiation
Numerical Simulation Study on Geothermal Extraction Characteristics of Supercritical CO2 in Heterogeneous Fractures
Action Mechanism of Heat Transfer between the Working Medium and the Impeller on Aerodynamic Performance and Flow Characteristics of Radial Inflow Turbines with Supercritical Carbon Dioxide
Analysis of the Attached Vortex Model for the Flow Characteristics of Wing Near-Field Wakes
Related Author
SUN Wenhao
LIU Hongbao
WANG Lei
QING Ziyou
LI Zhuolun
MA Yuan
LI Yanzhong
ZHONG Hui
Related Institution
School of Energy and Power Engineering,Xi’an Jiaotong University
Aerospace System Engineering Shanghai
School of Electrical Engineering,Xi’an Jiaotong University
Northwest Institute of Nuclear Technology
Institute of Electronic Engineering,China Academy of Engineering Physics