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Numerical investigation of spatial-developing turbulent heat transfer in forced convections at different supercritical pressures

机译:不同超临界压力下强制对流中的空间发育湍流传热的数值研究

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Direct numerical simulations have been adopted to study the turbulent heat transfer in forced convections of supercritical water at two different supercritical pressures P=23 MPa and P=25 MPa in a heated pipe with constant wall heat flux and a bulk Reynolds number of Re_0 = 5400. The present study aims to reveal the mechanisms of turbulent heat transfer of superciritical fluids at different pressures in a spatial-developing flow. The results show that at the smaller pressure ratio P_r = P/P_c, where P_c is the critical pressure, the property variations become more drastic, and both the skin friction coefficient and Nusselt number become smaller. The decompositions of skin friction and Nusselt number show that it is mainly due to the large turbulence reduction along the streamwise direction. The analyses of turbulent kinetic energy (TKE), the turbulent shear stress, and the production of TKE confirm this point. Moreover, it was found that the thermophysical property fluctuations are very large and significantly influence the turbulent statistics in the supercritical fluid flows. Due to the large property fluctuations, it was found that the density-fluctuation-related terms are significant and their values are actually comparable to the mean-density-related terms. Due to their negative contributions to turbulent shear stress and turbulent heat flux, the turbulence and heat transfer are severely attenuated by the large thermophysical property fluctuations. For near-wall scaling in spatial-developing flows at supercritical pressures, the semi-local velocity transformation with a semi-local coordinate shows a better agreement in the logarithmic region. However, a clear deviation still exists, especially for mean temperature because all the transformations only incorporate the local mean property variations and cannot consider their fluctuations.
机译:已经采用直接数值模拟来研究两种不同超临界压力的超临界水的强制对流中的湍流传热P = 23MPa,P = 25MPa在加热管中,恒定壁热通量和散装雷诺数的RE_0 = 5400 。本研究旨在揭示在空间显影流动中不同压力下跨界流体的湍流传热的机制。结果表明,在较小的压力比P_R = P / P_C处,其中P_C是临界压力,性能变化变得更加激烈,并且皮肤摩擦系数和露珠数量变得更小。皮肤摩擦和纽带的分解表明,它主要是由于沿着流动方向的大的湍流减少。湍流动能(TKE),湍流剪切应力和TKE生产的分析确认了这一点。此外,发现热物理性质波动非常大,并显着影响超临界流体流动中的湍流统计。由于大量波动,发现密度波动相关的术语是显着的,其值实际上与与平均相关的术语相当。由于它们对湍流剪切应力和湍流热通量的负面贡献,湍流和传热因大型热物理性的波动严重减弱。对于超临界压力下的空间开发流中的近壁缩放,具有半局部坐标的半局部速度变换在对数区域中显示出更好的一致性。然而,仍然存在明显的偏差,特别是对于平均温度,因为所有转换只包含本地平均值的变化,并且不能考虑其波动。

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