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Performance evaluation of a complete Lagrangian KTGF approach for dilute granular flow modelling

机译:用于稀释颗粒流模型的完整拉格朗日KTGF方法的性能评估

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摘要

Finely resolved gas–solid flow simulations were carried out using an improved Lagrangian method known as the dense discrete phase model (DDPM). The DDPM differs from the traditional Eulerian two fluid model (TFM) approach in that the solids phase is treated as discrete parcels of particles and not as a continuum. This method of particle tracking has several important fundamental advantages over standard Eulerian multifluid approaches including the much improved grid independence behaviour and easy inclusion of particle size distributions. Similarly to the TFM, particle collisions and uncorrelated translations are not simulated directly and still need to be modelled by means of the kinetic theory of granular flows (KTGF). This work presents two important improvements to the present state of development of the DDPM: the granular temperature was transported and the additional particle force due to the modelled granular shear stresses was included. The complete model compared well to control simulations carried out using the well-established TFM approach. The impact of the two modelling improvements was also investigated to find large effects, especially with regard to the granular temperature fields. Negligence of granular temperature transport reduced the total amount of granular temperature by a factor of fifteen, while negligence of the shear force resulted in a factor of three increase. It could therefore be concluded that the model improvements are indeed necessary to correctly capture the physics in the dilute riser flows simulated in the present study.
机译:使用改进的拉格朗日方法(称为致密离散相模型(DDPM))进行了精细解析的气固流模拟。 DDPM与传统的欧拉二流体模型(TFM)方法不同之处在于,固相被视为离散的颗粒,而不是连续的。与标准的欧拉多流体方法相比,这种粒子跟踪方法具有几个重要的基本优点,包括大大改善的网格独立性和易于包含的粒度分布。与TFM相似,粒子碰撞和不相关的平移不是直接模拟的,仍然需要借助颗粒流动力学理论(KTGF)进行建模。这项工作对DDPM的发展现状提出了两个重要的改进:运输了颗粒温度,并包括了由于建模的颗粒剪切应力而产生的附加颗粒力。完整的模型与使用完善的TFM方法进行的控制仿真进行了很好的比较。还研究了这两种建模改进的影响,以发现较大的影响,尤其是在颗粒温度场方面。颗粒温度传递的疏忽将颗粒温度的总量减少了十五倍,而剪切力的疏忽导致了三倍的增加。因此可以得出结论,对模型的改进确实是正确捕获本研究中模拟的稀疏立管流中的物理现象所必需的。

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