Direct Numerical Simulation of Convective Heat Transfer in a Zero-Pressure-Gradient Boundary Layer with Supercritical Water

被引:0
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作者
C. Azih [1 ]
J.R. Brinkerhoff [1 ]
M.I. Yaras [1 ]
机构
[1] Department of Mechanical and Aerospace Engineering, Carleton University
关键词
boundary layer; turbulence; supercritical fluids; improved heat transfer; DNS;
D O I
暂无
中图分类号
TK124 [传热学];
学科分类号
摘要
Experimental research has long shown that forced-convective heat transfer in wall-bounded turbulent flows of fluids in the supercritical thermodynamic state is not accurately predicted by correlations that have been developed for single-phase fluids in the subcritical thermodynamic state. In the present computational study, the statistical properties of turbulent flow as well as the development of coherent flow structures in a zero-pressuregradient flat-plate boundary layer are investigated in the absence of body forces, where the working fluid is in the supercritical thermodynamic state. The simulated boundary layers are developed to a friction Reynolds number of 250 for two heat-flux to mass-flux ratios corresponding to cases where normal heat transfer and improved heat transfer are observed. In the case where improved heat transfer is observed, spanwise spacing of the near-wall coherent flow structures is reduced due to a relatively less stable flow environment resulting from the lower magnitudes of the wall-normal viscosity-gradient profile.
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页码:49 / 59
页数:11
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