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首页> 外文期刊>China Particuology >EFFECT OF NOZZLE FAN ANGLE ON SPRAYS IN GAS-SOLID RISER FLOW
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EFFECT OF NOZZLE FAN ANGLE ON SPRAYS IN GAS-SOLID RISER FLOW

机译:喷嘴扇形角度对气固上升流喷雾的影响

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A three-dimensional simulation study is performed for investigating the hydrodynamic behaviors of a cross-flow liquid nitrogen spray injected into an air-fluidized catalytic cracking (FCC) riser of rectangular cross-section. Rectangular nozzles with a fixed aspect ratio but different fan angles are used for the spray feeding. While our numerical simulation reveals a generic three-phase flow structure with strong three-phase interactions under rapid vaporization of sprays, this paper tends to focus on the study of the effect of nozzle fan angle on the spray coverage as well as vapor flux distribution by spray vaporization inside the riser flow. The gas-solid (air-FCC) flow is simulated using the multi-fluid method while the evaporating sprays (liquid nitrogen) are calculated using the Lagrangian trajectory method, with a strong two-way coupling between the Eulerian gas-solid flow and the Lagrangian trajectories of spray. Our simulation shows that the spray coverage is basically dominated by the spray fan angle. The spray fan angle has a very minor effect on spray penetration. The spray vaporization flux per unit area of spray coverage is highly non-linearly distributed along the spray penetration. The convection of gas-solid flow in a riser leads to a significant downward deviation of vapor generated by droplet vaporization, causing a strong recirculating wake region in the immediate downstream area of the spray.
机译:进行了三维模拟研究,以研究注入到矩形横截面的空气流化催化裂化(FCC)立管中的错流液氮喷雾的流体动力学行为。具有固定长宽比但扇形角度不同的矩形喷嘴用于喷涂。虽然我们的数值模拟揭示了在喷雾快速汽化下具有强三相相互作用的通用三相流结构,但本文倾向于着重研究喷嘴扇角对喷雾覆盖率以及蒸汽通量分布的影响。提升管内部的喷雾蒸发。使用多流体方法模拟气固(FCC)流动,而使用拉格朗日轨迹法计算蒸发喷雾(液氮),欧拉气固流动与流动之间存在很强的双向耦合。喷雾的拉格朗日轨迹。我们的仿真表明,喷雾覆盖率基本上由喷雾扇角决定。喷雾扇角度对喷雾渗透的影响很小。喷雾覆盖物的每单位面积的喷雾汽化通量沿喷雾渗透高度非线性地分布。提升管中气固流的对流导致液滴蒸发产生的蒸汽明显向下偏移,从而在喷雾的紧邻下游区域产生强烈的再循环尾流区域。

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