Investigation on the differences in unsteady film cooling behaviors of gas turbine blades between mainstream and cooling air pulsations for a cylindrical hole

IF 2.6 3区 工程技术 Q2 ENGINEERING, MECHANICAL International Journal of Heat and Fluid Flow Pub Date : 2024-08-21 DOI:10.1016/j.ijheatfluidflow.2024.109548
Ran Yao , Liwei Ma , Jianhua Wang , Ming Gan
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Abstract

In practice, film cooling on gas turbine blade inevitably works in an unsteady environment, which is introduced by periodical rotor/stator interaction and unsteady combustion. Previous studies have introduced two methods to simulate the realistic unsteady condition: 1) the pulsation of mainstream velocity; and 2) the pulsation of coolant injection. However, up to this point, the differences in instantaneous film cooling behaviors between these two methods remain unclear. This work presents a series of large eddy simulations to exhibit the unsteady flow and film cooling behaviors under steady and the two unsteady flow conditions. The numerical strategy is validated against our time-resolved experimental data. Time-averaged results show that the difference between the two pulsations is not significant if the averaged blowing ratio remains the same. However, the pulsation type plays a dominant role on the transient mode of film coverage. Under the steady condition, film coverage instability is induced by the unsteady trajectory of near-wall vortex structure; but with pulsed environments, the unsteadiness magnitude increases, and the area with high unsteadiness level enlarges. The pulsation of the mainstream velocity induces a more severe film coverage instability compared to the pulsation of the cooling air injection, because of the higher fluctuation energy of the mainstream bulk. Under mainstream pulsation, the probability distribution of instantaneous cooling effectiveness is the most scattered, and the corresponding fluctuation range is the largest.

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圆柱孔燃气轮机叶片在主流脉动和冷却空气脉动下的非稳态薄膜冷却行为差异研究
在实际应用中,燃气轮机叶片上的薄膜冷却不可避免地要在不稳定的环境中工作,这种不稳定环境是由周期性的转子/定子相互作用和不稳定的燃烧引入的。以往的研究引入了两种方法来模拟现实的非稳态条件:1) 主流速度脉动;以及 2) 冷却剂喷射脉动。然而,到目前为止,这两种方法在瞬时膜冷却行为上的差异仍不清楚。本研究通过一系列大涡流模拟,展示了稳定和两种非稳定流动条件下的非稳定流动和薄膜冷却行为。数值策略与我们的时间分辨实验数据进行了验证。时间平均结果表明,如果平均吹气比保持不变,两种脉动之间的差异并不明显。然而,脉动类型对薄膜覆盖的瞬态模式起着主导作用。在稳定状态下,薄膜覆盖的不稳定性是由近壁涡旋结构的不稳定轨迹引起的;但在脉动环境下,不稳定性程度增加,不稳定性程度高的区域扩大。与冷却空气注入的脉动相比,主流速度的脉动会引起更严重的薄膜覆盖不稳定性,这是因为主流体的波动能量更高。在主流脉动下,瞬时冷却效果的概率分布最为分散,相应的波动范围也最大。
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来源期刊
International Journal of Heat and Fluid Flow
International Journal of Heat and Fluid Flow 工程技术-工程:机械
CiteScore
5.00
自引率
7.70%
发文量
131
审稿时长
33 days
期刊介绍: The International Journal of Heat and Fluid Flow welcomes high-quality original contributions on experimental, computational, and physical aspects of convective heat transfer and fluid dynamics relevant to engineering or the environment, including multiphase and microscale flows. Papers reporting the application of these disciplines to design and development, with emphasis on new technological fields, are also welcomed. Some of these new fields include microscale electronic and mechanical systems; medical and biological systems; and thermal and flow control in both the internal and external environment.
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