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Effect of Temperature Dependent Fluid Properties on Heat Transfer in Turbulent Mixed Convection

机译:温度相关流体特性对湍流混合对流传热的影响

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The effect of the uniform fluid properties approximation (Oberbeck-Boussinesq (OB)) in turbulent mixed convection is investigated via direct numerical simulation (DNS) of water flows with viscosity (μ) and thermal expansion coefficient (β) both independently and simultaneously varying with temperature (non-Oberbeck-Boussinesq conditions (NOB)). Mixed convection is analyzed for the prototypical case of Poiseuille-Rayleigh-Benard (PRB) turbulent channel flow. In PRB flows, the combination of buoyancy driven (Rayleigh-Benard) with pressure driven (Poiseuille) effects produce a complex flow structure, which depends on the relative intensity of the flow parameters (i.e., the Grashof number, Gr, and the shear Reynolds number, Re_τ). In liquids, however, temperature variations induce local changes of fluid properties which influence the macroscopic flow field. We present results for different absolute values of the shear Richardson numbers (Ri_ τ= Gr/Re_τ~2) under constant temperature boundary conditions. As Ri_τ is increased buoyant thermal plumes are generated, which induce large scale thermal convection that increases momentum and heat transport efficiency. Analysis of friction factor (C_f) and Nusselt number (Nu) for NOB conditions shows that the effect of viscosity is negligible, whereas the effect of thermal expansion coefficient is significant. Statistics of mixing show that (ⅰ) mixing increases for increasing Ri_τ (and decreases for increasing Re_τ) and (ⅱ) the effect of thermal expansion coefficient on mixing increases for increasing Ri_τ (and decreases for increasing Re_τ). A simplified phenomenological model to predict heat transfer rates in PRB flows has also been developed.
机译:通过对水流的直接数值模拟(DNS)来研究湍流混合对流中均匀流体特性近似(Oberbeck-Boussinesq(OB))的影响,该数值对具有粘性(μ)和热膨胀系数(β)的水流进行独立数值模拟,同时随温度(非Oberbeck-Boussinesq条件(NOB))。分析了Poiseuille-Rayleigh-Benard(PRB)湍流通道流动的典型情况下的混合对流。在PRB流量中,浮力驱动(Rayleigh-Benard)和压力驱动(Poiseuille)效应的结合产生了复杂的流动结构,这取决于流动参数的相对强度(即,Grashof数,Gr和剪切雷诺数)数,Re_τ)。但是,在液体中,温度变化会引起流体特性的局部变化,从而影响宏观的流场。我们给出了在恒定温度边界条件下,剪切理查森数的不同绝对值(Ri_τ= Gr /Re_τ〜2)的结果。随着Ri_τ的增加,产生了漂浮的热羽流,这些羽流引起大规模的热对流,从而增加了动量和热传递效率。对NOB条件的摩擦因数(C_f)和Nusselt数(Nu)的分析表明,粘度的影响可忽略不计,而热膨胀系数的影响则很明显。混合的统计数据表明,(ⅰ)混合随Ri_τ的增加而增加(而随Re_τ的增加而减少),以及(ⅱ)热膨胀系数对混合的影响随Ri_τ的增加而增加(而随Re_τ的增加而减少)。还开发了一种简化的现象学模型来预测PRB流动中的传热速率。

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