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APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - A correction procedure for thermally two-way coupled point-particles

机译:APS-流体动力学APS部门第70届年会-事件-热双向耦合点粒子的校正程序

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Development of a robust procedure for the simulation of two-way coupled particle-laden flows remains a challenge. Such systems are characterized by O(1) or greater mass of particles relative to the fluid. The coupling of fluid and particle motion via a drag model means the undisturbed fluid velocity evaluated at the particle location (which is needed in the drag model) is no longer equal to the interpolated fluid velocity at the particle location. The same issue arises in problems of dispersed flows in the presence of heat transfer. The heat transfer rate to each particle depends on the difference between the particle's temperature and the undisturbed fluid temperature. We borrow ideas from the correction scheme we have developed for particle-fluid momentum coupling [1] by developing a procedure to estimate the undisturbed fluid temperature given the disturbed temperature field created by a point-particle. The procedure is verified for the case of a particle settling under gravity and subject to radiation. The procedure is developed in the low Peclet, low Boussinesq number limit, but we will discuss the applicability of the same correction procedure outside of this regime when augmented by appropriate drag and heat exchange correlations.
机译:开发用于模拟双向耦合充满粒子流的鲁棒程序仍然是一个挑战。这样的系统的特征在于相对于流体为O(1)或更大质量的颗粒。通过阻力模型进行的流体和粒子运动的耦合意味着在粒子位置评估的未扰动流体速度(在阻力模型中需要)不再等于粒子位置处的插值流体速度。在存在热传递的情况下,在分散流的问题中也会出现相同的问题。每个粒子的传热速率取决于粒子温度和未扰动流体温度之间的差异。我们通过为粒子-流体动量耦合[1]开发的校正方案,通过开发一种程序来估计点流体产生的扰动温度场,从而得出不受干扰的流体温度,从而借鉴了这些方案。对于粒子在重力作用下沉降并受到辐射照射的情况,该程序进行了验证。该程序是在低Peclet和低Boussinesq数限制下开发的,但是当通过适当的阻力和热交换相关性进行增强时,我们将讨论在此范围之外的相同校正程序的适用性。

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