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首页> 外文期刊>Journal of Fluid Mechanics >Pseudo-turbulent heat flux and average gas-phase conduction during gas-solid heat transfer: flow past random fixed particle assemblies
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Pseudo-turbulent heat flux and average gas-phase conduction during gas-solid heat transfer: flow past random fixed particle assemblies

机译:气固传热过程中的伪湍流和平均气相传导:流经随机的固定颗粒组件

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摘要

Fluctuations in the gas-phase velocity can contribute significantly to the total gas-phase kinetic energy even in laminar gas solid flows as shown by Mehrabadi et al. (J. Fluid Mech., vol. 770. 2015, pp. 210-246), and these pseudo-turbulent fluctuations can also enhance heat transfer in gas solid flow. hi this work, the pseudo-turbulent heat flux arising from temperature velocity covariance, and average fluid-phase conduction during convective heat transfer in a gas solid flow are quantified and modelled over a wide range of mean slip Reynolds number and solid volume fraction using particle-resolved direct numerical simulations (PR-DNS) of steady flow through a random assembly of fixed isothermal monodisperse spherical particles. A thermal self-similarity condition on the local excess temperature developed by Tunica et al. (Intl J. Heat Mars Transfer, vol. 58, 2013, pp. 471-479) is used to guarantee thermally fully developed flow. The average gas solid heat transfer rate for this flow has been reported elsewhere by Sun et al. (Intl J. Heat Mass Ransfer, vol. 86, 2015, pp. 898-913). Although the mean velocity field is homogeneous, the mean temperature field in this thermally fully developed flow is inhomogeneous in the streaniwise coordinate. An exponential decay model for the average bulk fluid temperature is proposed. The pseudo-turbulent heat flux that is usually neglected in two-fluid models of the average fluid temperature equation is computed using PR-DNS data. It is found that the transport term in the average fluid temperature equation corresponding to the pseudo-turbulent heat flux is significant when compared to the average gas solid heat transfer over a significant range of solid volume fraction and mean slip Reynolds number that was simulated. For this flow set-up a gradient-diffusion model for the pseudo-turbulent heat flux is found to perform well. The Nclet number dependence of the effective thermal diffusivity implied by this model is explained using a scaling analysis. Axial conduction in the fluid phase, which is often neglected in existing one-dimensional models, is also quantified. As expected, it is found to be important only for low Peclet number flows. Using the exponential decay model for the average hulk fluid temperature, a model for average axial conduction is developed that verifies standard assumptions in the literature. These models can be used in two-fluid simulations of heat transfer in fixed beds. A budget analysis of the mean fluid temperature equation provides insight into the variation of the relative magnitude of the various terms over the parameter space.
机译:如Mehrabadi等人所述,即使在层流气体固相流动中,气相速度的波动也可显着影响总气相动能。 (J. Fluid Mech。,vol.770。2015,pp.210-246),这些伪湍流波动也可以增强气固流动中的热传递。在这项工作中,对由气固流中的温度速度协方差和对流传热过程中的平均流体相传导产生的伪湍流通量进行了量化,并使用粒子对大范围的平均滑动雷诺数和固体体积分数进行了建模。固定等温单分散球形颗粒随机组装产生的稳定流的直接解析数值模拟(PR-DNS)。 Tunica等人在局部过高温度下的热自相似条件。 (Intl J. Heat Mars Transfer,第58卷,2013年,第471-479页)用于保证热充分发展的流动。 Sun等人在其他地方已经报道了这种流动的平均气固传热速率。 (国际J.热质量Ransfer,第86卷,2015,第898-913页)。尽管平均速度场是均匀的,但在这种热充分展开的流中的平均温度场在方向坐标上是不均匀的。提出了平均散装流体温度的指数衰减模型。使用PR-DNS数据计算通常在平均流体温度方程的双流体模型中被忽略的拟湍流热通量。已经发现,与在模拟的固体体积分数和平均滑动雷诺数的显着范围内的平均气固传热相比,平均流体温度方程中与拟湍流热通量相对应的输运项很重要。对于这种流动装置,发现拟湍流热通量的梯度扩散模型表现良好。使用比例分析解释了此模型隐含的有效热扩散率的Nclet数依赖性。还量化了在现有的一维模型中经常被忽略的液相中的轴向传导。如预期的那样,发现它仅对低Peclet数流很重要。使用针对平均绿油流体温度的指数衰减模型,开发了用于平均轴向传导的模型,该模型验证了文献中的标准假设。这些模型可用于固定床传热的两流体模拟。通过对平均流体温度方程式进行的预算分析,可以洞悉参数空间中各个项的相对大小的变化。

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