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Isothermal Jet Suction Through the Lateral Openings of a Cylindrical Funnel

机译:通过圆柱漏斗的侧向开口进行等温射流抽吸

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摘要

This paper discusses the computation of air entrainment in to the louvers of a cylindrical funnel as a result of a high-velocity isothermal air jet placed inside the funnel having different lengths of protrusion and different funnel diameters. The experimental setup consists of a cylindrical Perspex tube with circular louvers cut around it. The flow through the nozzle is measured with a rotameter, and the velocity at the cylinder outlet is measured with a hot wire anemometer. The numerical simulation is carried out by solving the conservation equations of mass and momentum for the funnel with a surrounding computational domain so that the suction can take place at the louver entry. The resulting equations have been solved numerically using finite volume technique in an unstructured grid employing eddy viscosity based two-equation k-ε turbulence model of Fluent 6.3. lt has been found from the experiment and the CFD computation that there exists an optimum funnel diameter for which the mass ingress into the funnel is highest, and also there exists an optimum protrusion length of the nozzle that entrains maximum air flow into the funnel. For isothermal air suction the mass ingress into the funnel does not depend on the inclination of the funnel, whereas for low velocity and high temperature of the nozzle fluid the mass ingress in to the funnel depends on the inclination of the funnel. After a critical nozzle velocity (Gr/Re2 < 0.5), the mass ingress into the funnel does not again depend on the inclination of the funnel. An approximate relation for the entrance length of a sucking pipe has also been developed from the present CFD solution. The original contribution of the paper is the setting of a computational methodology for computing various conditions of suction flow in to a funnel while having the numerical confidence by comparing the CFD result with a small-scale experimental measurement in the laboratory.
机译:本文讨论了由于漏斗内部放置的高速等温空气射流(具有不同的突出长度和不同的漏斗直径)而导致的圆筒形漏斗中空气夹带的计算。实验装置包括一个圆柱形的有机玻璃管,其周围切有圆形百叶窗。通过喷嘴的流量用转子流量计测量,而气缸出口处的速度用热线风速仪测量。数值模拟是通过求解漏斗的质量和动量守恒方程并在周围具有计算域来进行的,从而可以在百叶窗入口处发生吸力。在非结构化网格中使用有限体积技术对所得方程进行了数值求解,该网格采用基于Fluent 6.3的基于涡流粘度的两方程式k-ε湍流模型。从实验和CFD计算中已经发现,存在最佳质量的漏斗直径,质量进入该最佳漏斗直径最大,并且还存在最佳的喷嘴突出长度,其夹带最大的空气进入漏斗。对于等温吸气,质量进入漏斗并不取决于漏斗的倾斜度,而对于喷嘴流体的低速和高温而言,进入漏斗的质量取决于漏斗的倾斜度。在临界喷嘴速度(Gr / Re2 <0.5)之后,进入漏斗的质量不再取决于漏斗的倾斜度。从当前的CFD解决方案中还已经开发出与吸管的入口长度的近似关系。本文的最初贡献是设定了一种计算方法,用于计算进入漏斗的各种吸力条件,同时通过将CFD结果与实验室中的小规模实验测量结果进行比较,具有数值可信度。

著录项

  • 来源
    《Journal of Ship Research》 |2010年第4期|p.268-280|共13页
  • 作者单位

    Department of Mechanical Engineering, Indian Institute of Technology, Kharagpur, India;

    rnDepartment of Mechanical Engineering, Indian Institute of Technology, Kharagpur, India;

    rnDepartment of Mechanical Engineering, Indian Institute of Technology, Kharagpur, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    model testing; nozzles; water jets; warships;

    机译:模型测试;喷嘴水刀;军舰;
  • 入库时间 2022-08-18 01:37:11

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