旋转角对y型扩散管流动特性的影响

R B Anand, R. Sandeep
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引用次数: 7

摘要

由于空间的限制和设计的兼容性,弯曲扩散器在流体流动系统中被用来同时减速和转动流体。实现高压回收的主要问题是流动分离,它会导致流动分布不均匀和损失过大。本工作旨在揭示y形扩散管内流体的流动特性;两个入口和一个出口。考虑了一组具有相同曲线长度和面积比的三个y形扩散管,其转弯角(15°,22.5°和30°)不同。y形扩散管由两个相似的s形圆形扩散管组合而成。y形风管的总面积比为1.5,曲线长度为600mm。整个调查分两个阶段进行;在第一阶段,验证了商业CFD程序对s型扩散器内流体流动分析的能力,在第二阶段,进行了y型管道转弯角影响的调查研究。在验证过程中,利用已建立的实验结果,发现应用RNG k-ε湍流模型的CFD程序预测结果与实验结果接近。从验证中获取想法,对剩余的分析遵循类似的过程。结果用等高线图表示轴向速度分布,用矢量图表示横向速度分布。根据质量平均值计算静压恢复系数和总压损失系数等性能参数。
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Effect of angle of turn on flow characteristics of Y-shaped diffusing duct using CFD
The curved diffusers are used in fluid flow systems to decelerate the fluid flow and turn the fluid simultaneously due to space restrictions and design compatibility. The main problem in achieving a high pressure recovery is the flow separation which results in non-uniform flow distribution and excessive losses. The present work is aimed to reveal the fluid flow characteristics in the Y-shaped diffusing ducts; two inlets and one outlet. A set of three Y-shaped diffusing ducts having same curvilinear length and area ratio while varying in the angle of turn (15°, 22.5°and 30°) are considered for the investigation. The Y-shaped diffusing duct is formed by combining two S-shaped circular similar diffusing ducts. The overall area ratio of the Y-shaped duct is 1.5 and the curvilinear length is 600mm. The whole investigation is carried out in two phases; in the first phase a commercial CFD code is verified for the capability against the fluid flow analysis within an S-shaped diffuser and in the second phase, the investigation is carried out to study the effect of angle of turn in the Y-shaped ducts. For the process of validation the established experimental results are used and found that the CFD code applying RNG k-ε turbulence model is predicted the results close to experiments. Taking idea from the validation similar procedure is followed for the remaining analysis. The results are presented in the form of contour plots for the axial velocity distribution and the cross flow velocity distribution is depicted as vector plots. The performance parameters like coefficients of static pressure recovery and total pressure loss are calculated based on the mass-averaged quantities.
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