Analysis of Swirl Number Effects on Effusion Flow Behaviour Using Time Resolved PIV

T. Lenzi, A. Picchi, A. Andreini, B. Facchini
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引用次数: 1

Abstract

The analysis of the interaction between the swirling and cooling flows, promoted by the liner film cooling system, is a fundamental task for the design of turbine combustion chambers since it influences different aspects such as emissions and cooling capability. In particular high turbulence values, flow instabilities, and tangential velocity components induced by the swirling flow deeply affect the behavior of effusion cooling jets, demanding for dedicated time-resolved near-wall experimental analysis. The experimental set up of this work consists of a non-reactive single-sector linear combustor test rig scaled up with respect to engine dimensions; the test section was equipped with an effusion plate with standard inclined cylindrical holes to simulate the liner cooling system. The rig was instrumented with a 2D Time-Resolved Particle Image Velocimetry system, focused on different field of views. The degree of swirl for a swirling flow is usually characterized by the swirl number, Sn, defined as the ratio of the tangential momentum flux to axial momentum flux. To assess the impact of such parameter on the near-wall effusion behavior, a set of three different axial swirlers with swirl number equal to Sn = 0.6 - 0.8 - 1.0 were designed and tested in the experimental apparatus. An analysis of the main flow field by varying the Sn was first performed in terms of average velocity, RMS, and Tu values, providing kinetic energy spectra and turbulence length scale information. In a second step, the analysis was focused on the near-wall regions: the strong effects of Sn on the coolant jets was quantified in terms of vorticity analysis and jet oscillation.
用时间分辨PIV分析旋流数对射流流动特性的影响
涡动流与冷却流之间的相互作用是涡轮燃烧室设计的一项基本任务,因为涡动流与冷却流之间的相互作用影响着排放和冷却能力等各个方面。特别是高湍流值、流动不稳定性和旋转流引起的切向速度分量深刻影响了射流冷却的行为,需要专门的时间分辨近壁实验分析。这项工作的实验装置包括一个按发动机尺寸按比例放大的无反应单扇形线性燃烧室试验台;在试验段安装标准倾斜圆柱孔的渗液板,模拟衬里冷却系统。该钻机配备了一个2D时间分辨粒子图像测速系统,专注于不同的视场。旋流的旋流程度通常用旋流数Sn来表示,旋流数Sn定义为切向动量通量与轴向动量通量之比。为了评估该参数对近壁射流行为的影响,设计了三组不同的轴向旋流器,旋流数分别为Sn = 0.6 - 0.8 - 1.0,并在实验装置上进行了测试。通过改变Sn对主流场进行分析,首先根据平均速度、RMS和Tu值进行了分析,提供了动能谱和湍流长度尺度信息。在第二步,分析集中在近壁区域:从涡度分析和射流振荡的角度量化了Sn对冷却剂射流的强烈影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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