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首页> 外文期刊>Korea-Australia Rheology Journal >Comparison of the rheological behavior of particulate suspensions in power-law and Newtonian fluids by combined improved smoothed profile-lattice Boltzmann methods
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Comparison of the rheological behavior of particulate suspensions in power-law and Newtonian fluids by combined improved smoothed profile-lattice Boltzmann methods

机译:通过组合改进的平滑轮廓晶格玻璃晶晶型方法比较颗粒状悬浮液的流变行为和牛顿流体的流变行为

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In the present work, a numerical algorithm based on a combination of the lattice Boltzmann method (LBM) and the improved smoothed profile method (iSPM) has been proposed to study the motion of one, two and many circular particles in a non-Newtonian fluid. At first, the velocity profile of the non-Newtonian fluid at various power law indexes ( n ) was analyzed and the findings were compared with the numerical results of the previous works. Then, the motion of one circular cylinder and the hydrodynamic interactions between two particles in a shear flow were investigated. It was observed that Re _( shear, p )had no important impact on the rotation of a single cylinder. In the two particles interaction, increasing the shear rate caused the particles to tumble on each other more closely and during a longer time. Therefore, the effective viscosity of a particulate suspension was considered for different Reynolds numbers and solid volume fractions, showing a satisfactory agreement with the previously published data. The results, therefore, showed that inertia increased the particles contribution to the effective viscosity of the suspension.
机译:在本作工作中,已经提出了一种基于格子Boltzmann方法(LBM)和改进的平滑轮廓方法(ISPM)的组合的数值算法,以研究非牛顿流体中的一种,两个和许多圆形颗粒的运动。首先,分析了各种动力法指标(N)处的非牛顿流体的速度分布,并将研究结果与先前作品的数值结果进行了比较。然后,研究了一种圆柱体的运动和两个颗粒之间的剪切流程之间的流体动力学相互作用。观察到RE _(剪切,P)对单缸的旋转没有重要的影响。在两个颗粒相互作用中,增加剪切速率导致颗粒更接近和在较长时间内彼此滚动。因此,考虑了不同雷诺数和固体体积分数的颗粒悬浮液的有效粘度,显示出与先前公布的数据的令人满意的协议。因此,结果表明惯性增加了颗粒对悬浮液的有效粘度的贡献。

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