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FULLY RESOLVED SIMULATIONS OF STATIONARY PARTICLES IN TURBULENT FLOW

机译:在湍流中完全解决了固定颗粒的模拟

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Gas flows containing a dilute loading of solid particle constitute an important class of multiphase flows. In most cases the gas flow is turbulent, and the interactions between the particles and the turbulence offer major modeling challenges. Many numerical models implicitly assume that the particles are significantly smaller than all turbulence length scales. Simple particle drag laws derived for uniform steady flow around a sphere are used to compute the motion of point-particles, and to determine the magnitude of the point-forces that are applied to the gas phase in order to produce turbulence modification. This technique may be appropriate if the particle is small relative to any turbulent eddies, but in many practical problems the particle diameter, d, is of the same order as the flow Kolmogorov scale, η. Here we perform fully-resolved simulations of a fixed particle in decaying homogeneous isotropic turbulence using an overset grid method. All flow scales are accurately resolved with this technique including the effect of the no-slip boundary condition at the particle surface. A set of 29 simulations with an initial Taylor mi-croscale Reynolds number, Reλ = 32.2, and Kolmogorov length scale, η = 0.45d are computed to obtain a useful statistical sample. The turbulent kinetic energy and viscous dissipation near the particle surface in laden and unladen simulations are compared to provide understanding of the turbulence modification process. We anticipate that these results will provide direction for the development of turbulence modification models suitable for larger scale simulations where the flow cannot be resolved to the particle surface.
机译:含有稀释固体颗粒的气体流量构成了一类重要的多相流量。在大多数情况下,气流是湍流的,并且颗粒与湍流之间的相互作用提供了主要的建模挑战。许多数值模型隐含地假设粒子明显小于所有湍流长度尺度。用于球体周围均匀稳定流动的简单颗粒阻力法用于计算点粒子的运动,并确定施加到气相的点力的大小以便产生湍流修改。如果颗粒相对于任何湍流漩涡小,则这种技术可能是合适的,但在许多实际问题中,粒径D,与流动kolmogorov刻度η相同。在这里,我们使用普雷栅格方法在衰减均匀各向同性湍流中进行全解析的固定粒子模拟。通过该技术精确地解决所有流程,包括颗粒表面的无滑动边界条件的效果。使用初始泰勒MI-CROSCLE Reynolds号码,Reλ= 32.2和Kolmogorov长度刻度,η= 0.45d的一组29模拟,以获得有用的统计样本。将湍流的动能和粘性的动能和粘性耗散在Laden和Unladen模拟中进行了比较,以提供了对湍流改性过程的理解。我们预测这些结果将提供适合于更大刻度模拟的湍流修改模型的发展方向,其中流动不能分离到颗粒表面。

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