Numerical Analysis for Forced Convection Heat Transfer of Rarefied Gas Across Circular Cylinder in Slip Flow Region[J]. 2017, 51(10): 88-93.
DOI:
Numerical Analysis for Forced Convection Heat Transfer of Rarefied Gas Across Circular Cylinder in Slip Flow Region[J]. 2017, 51(10): 88-93.DOI: 10.7652/xjtuxb201710015.
Numerical Analysis for Forced Convection Heat Transfer of Rarefied Gas Across Circular Cylinder in Slip Flow Region
the flow regimes of gas over the wall of the tank varies with altitude
which leads to changing characteristics of the heat transfer between the tank wall and atmosphere. To reveal the characteristics of convective heat transfer across a circular cylinder for rarefied gas
the boundary conditions for the velocity slip and temperature jump are presented. A modified method of Fluent model is developed to predict the heat transfer in slip flow region within the ranges of Reynolds number from 0.001 to 20 and Knudsen number from 0.001 to 3
and in these regions
the numerical simulation results are compared with the experimental data. The results show that in continuous flow region(Kn≤0.01)
different boundary conditions exert little influence on the results. However
for slip flow region(0.01<Kn≤0.1)
the predicted results with the modified boundary condition become more accurate
and this method with the modified boundary condition could extend to partial transition flow region(0.1<Kn<2)to predict heat exchange.
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