Effect of non-uniform crossflow in coolant channel on film cooling characteristics
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摘要:
为探讨实际涡轮叶片内横流对气膜冷却特性的影响,基于自主开发GCFD代码模拟冷气横流从有限通道一侧到另一侧参数非均匀变化导致的气膜冷却特性改变。研究对象为15孔圆柱型气膜冷却平板,其冷却通道垂直于主流通道、通流面积与气膜孔出流总截面积相等。结果表明:非均匀进气横流与下游堵塞对各气膜孔入口施加切向动量比例不同,使其流动结构发生变化;孔间相互作用进一步导致气膜覆盖呈现冷气迎风侧偏移、背风侧偏移以及维持对称分布等特征。随吹风比从0.2上升到1.5,参数的非线性变化加强,最大流量系数与最小流量系数之比越来越小,最小值为1.04;最大面平均冷效与最小面平均冷效之比越来越大,最大值为3.06。
Abstract:To investigate the effect of crossflow within turbine blades on film cooling characteristics, a numerical study was conducted. An in-house GCFD code was employed to simulate the impact of the non-uniform variation in coolant flow across a limited channel on film cooling characteristics. The research focused on a 15-hole cylindrical film cooling flat plate, where the coolant flow channel is perpendicular to the mainstream flow channel in space. The coolant flow area equals the total cross-sectional area of all film cooling holes. Results show that the non-uniform crossflow and downstream blockage apply different tangential momentum proportions to the entrance of each film hole, causing changes in the flow structure of the holes. The interaction between holes further leads to different characteristics of film coverage, including windward and leeward deviations, as well as a symmetric distribution. As the blowing ratio increases from 0.2 to 1.5, the non-linear variation of parameters intensifies. The ratio of the maximum to minimum discharge coefficient decreases, reaching a minimum value of 1.04. The ratio of the maximum to minimum space-averaged cooling effectiveness increases, with a maximum value of 3.06.
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Key words:
- non-uniform crossflow /
- film cooling /
- cylindrical hole /
- discharge coefficient /
- blowing ratio
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表 1 气膜冷却平板边界条件
Table 1. Boundary conditions for film cooling flat plate
参数 数值 主流通道入口总温Tm0/K 540 冷却通道入口总温Tc0/K 310 主流马赫数Mam 0.3 主流湍流度Tum/% 5.2 吹风比M 0.2, 0.5, 1.0, 1.5 密度比D 1.75 主流雷诺数Rem 32000 -
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