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CFD-based numerical simulation of cyclone separator for separating stigmas from petals of saffron

机译:基于CFD的旋风分离器的数值模拟,从藏红花的花瓣分离柱头

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This study modelled numerically the flow of a fluid (air) and solid particles (saffron flower) inside a cyclone using the finite volume method in ANSYS Fluent. The continuous phase was simulated under steady state condition, as initial condition, using the Reynolds stress model for turbulence at three constant inlet air velocities of 1.5 m/s, 2.5 m/s, and 3.5 m/s over the inlet section. One-way coupling was assumed to govern all numerical analyses. The fluid phase and particles were treated as continuous medium (within a Eulerian framework) and discrete phase (within a Lagrangian framework), respectively. The equations governing the gas phase included the compressible Navier-Stokes equation and the conservation of mass equation. The discrete phase equations included the equations of motion for three different particles, including petals, stigmas, and anthers. According to the numerical results, the cyclone separation efficiency was calculated, and the static pressure and velocity contours were plotted. The results showed that the computational fluid dynamics-based simulation can provide an accurate demonstration of the behaviour of the fluid-solid phase. Accordingly, it can be used to predict the efficiency of stigma separation from petals of saffron using the airflow in the cyclone. According to the results, the highest cyclonic separation efficiency of 89% was achieved at an inlet air velocity of 3.5 m/s, which was very close to the experimental data.
机译:本研究在旋风内使用ansys流畅的有限体积法在旋风内的流体(空气)和固体颗粒(藏红花花)的流动进行了模拟。在稳态条件下模拟连续相位,作为初始条件,使用雷诺应力模型在三个恒定入口空气速度下为1.5 m / s,2.5 m / s和3.5 m / s的湍流。假设单向耦合来管理所有数值分析。将流体相和颗粒作为连续介质(在欧拉架内)和离散相(在拉格朗日框架内)。控制气相的方程包括可压缩的Navier-Stokes方程和质量方程的守恒。离散相方程包括三种不同粒子的运动方程,包括花瓣,柱头和花树。根据数值结果,计算旋风分离效率,绘制静压和速度轮廓。结果表明,基于计算流体动力学的仿真可以提供流体固相的行为的准确演示。因此,它可以用来预测使用旋风器中的气流与藏红花的花瓣分离的柱子分离的效率。根据结果​​,在3.5m / s的入口空气速度下实现了89%的最高旋风分离效率,这非常接近实验数据。

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