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首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical simulation of supercritical pressure fluids with property-dependent turbulent Prandtl number and variable damping function
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Numerical simulation of supercritical pressure fluids with property-dependent turbulent Prandtl number and variable damping function

机译:具有特性相关湍流普朗特数和可变阻尼功能的超临界压力流体的数值模拟

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摘要

When fluids at supercritical pressure enter into a region close to the pseudo-critical temperature, their numerical simulations with constant turbulent Prandtl number, Pr_t, and conventional damping function in turbulence modeling are never successful in reproducing the fluid-thermal behaviors, since fluids experience strong physical property variations across the turbulent boundary layer, and their influence has not been properly incorporated into a turbulence model. Several experimental data and numerical studies have indicated that Pr_t can be very smaller or larger than unity in a region of strong property variation. Recent research, both numerical and experimental, has also indicated that Pr_t is very likely a function of fluid-thermal variables, when the gradients of the physical properties of the fluid are significant. In this regard, the property-dependent turbulent Pr_t as a function of physical properties, which has recently been published by the first author, was introduced. Another point deserving attention is that turbulent boundary layer (TBL) deforms so severely, and so does the effective viscous sublayer thickness, A~+, such that A~+ is no longer a constant, but a function of the degree of TBL deformation due to buoyancy. A~+ is expressed as a function of buoyancy and acceleration parameters when using already-known information. With this introduction of the functional form for A~+ it is believed that the velocity overshoot and consequential TBL deformation are taken into account. The numerical simulations with property-dependent Pr_t and buoyancy-dependent A~+ of flows under strong buoyancy agreed very well with the experimental data.
机译:当处于超临界压力的流体进入接近伪临界温度的区域时,在湍流建模中使用恒定湍流Prandtl数,Pr_t和常规阻尼函数进行的数值模拟永远无法成功地再现流体热行为,因为流体会经历强湍流边界层的物理性质变化及其影响尚未适当地纳入湍流模型。几个实验数据和数值研究表明,在强烈的性能变化区域,Pr_t可以小于或大于1。数值和实验方面的最新研究也表明,当流体的物理特性梯度很大时,Pr_t很可能是流体热变量的函数。在这方面,介绍了第一作者最近发表的随物理性质变化的与特性有关的湍流Pr_t。值得关注的另一点是,湍流边界层(TBL)变形非常严重,有效的粘性子层厚度A〜+也是如此,以致A〜+不再是常数,而是TBL变形程度的函数浮力。当使用已知信息时,A〜+表示为浮力和加速度参数的函数。通过引入用于A +的功能形式,可以认为已经考虑了速度过冲和相应的TBL变形。在强浮力作用下,随特性变化的Pr_t和随浮力变化的A〜+数值模拟与实验数据吻合得很好。

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