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首页> 外文期刊>International Journal of Mechanical Sciences >An optimized CFD-DEM method for fluid-particle coupling dynamics analysis
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An optimized CFD-DEM method for fluid-particle coupling dynamics analysis

机译:用于流体粒子耦合动力学分析的优化CFD-DEM方法

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When the unresolved CFD-DEM (Computational Fluid Dynamics and Discrete Element Method) method is used to solve two-phase flow (composed of fracturing fluid and quartz sand) problems in a pipe, although the collision and accumulation of particles can be described in mesoscopic scale, the method has a serious shortcoming: the contradiction between computational efficiency and computational accuracy. In the current study, an improved CFD-DEM method based on time roundabout increment way is proposed. By improving the solution strategy of unresolved CFD-DEM in terms of time incremental way, the iterative convergence criteria and time advancement algorithm of fluid-particle coupling have been established. The improved CFD-DEM method can automatically adjust the CFD time steps according to the convergence criteria. At each time step, the particle iteration updates the force between the fluid and the particle. Also the fluid can be solved in a roundabout way based on the convergence criteria. A computational example is given by applying the improved CFD-DEM method to analyze a two-phase flow (fracturing fluid and quartz sand) in a contraction-expansion pipe. The result shows that the new method can simulate particle collisions efficiently, and calculate the pressure loss of the two-phase flow accurately. It is found that when the sand ratio is increased from 0 to 56%, the accumulation of particles at the outer edge of the sudden contraction/expansion section is more pronounced, while the force chain is much easier to be formed. When the diameter ratio increases from 0.3 to 0.7, the particle accumulation is weakened and the particle collision force chain is evenly distributed. Our research work provides a highly effective computational method for the solution of solid-liquid two-phase flow, and can be applied for coupled dynamic analysis of particles and fluids.
机译:当未解决的CFD-DEM(计算流体动力学和离散元件方法)方法用于解决管道中的两相流(由压裂液和石英砂)问题时,尽管可以在介于术中描述颗粒的碰撞和累积规模,该方法具有严重的缺点:计算效率与计算准确性之间的矛盾。在本前研究中,提出了一种基于时间环形交叉增量方式的改进的CFD-DEM方法。通过在时间增量方式改进未解决的CFD-DEM的解决方案策略,已经建立了流体粒子耦合的迭代收敛标准和时间进步算法。改进的CFD-DEM方法可以根据收敛标准自动调整CFD时间步骤。在每个时间步骤中,粒子迭代更新流体和颗粒之间的力。此外,流体可以基于收敛标准以迂回方式解决。通过应用改进的CFD-DEM方法给出计算示例,以分析收缩膨胀管中的两相流(压裂液和石英砂)。结果表明,新方法可以有效地模拟粒子冲突,并准确地计算两相流的压力损失。结果发现,当砂比从0增加到56%时,突然收缩/膨胀部分的外边缘处的颗粒的累积更加明显,而力链更容易形成。当直径比从0.3增加到0.7时,粒度积聚被削弱,颗粒碰撞力链均匀分布。我们的研究工作为固液两相流溶液提供了一种高效的计算方法,可以应用于耦合的粒子和流体的动态分析。

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