利用大涡模拟研究涡轮叶片内前缘通道撞击冷却结构的传热和流动特性

0 ENGINEERING, MECHANICAL
Huihui Wang, Qinghua Deng, Zhenping Feng
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引用次数: 0

摘要

作为多通道壁面喷流冷却结构的主要部分,通道撞击冷却是涡轮叶片内侧前缘处备受关注的一种冷却策略。本文通过大涡模拟(LES)研究了通道撞击冷却结构中的传热和流动行为。结果表明,由曲率引起的离心不稳定性在冷却通道转弯区域产生的撞击由包含反向旋转迪恩涡旋的流向涡旋系统主导,在目标壁上沿流向方向呈现出高传热条纹。由于压力梯度和离心力之间缺乏平衡,冷却射流具有强烈的不稳定性,LES 在此精确地捕捉到了这种不稳定性。在冷却通道下游外壁形成的附壁射流具有高度三维特性,而雷诺平均纳维-斯托克斯方程(RANS)无法观察到这一特性。冷却通道靶壁的传热增强主要是由于在离心力的驱动下,转弯区域形成的流向涡旋系统不断增强。这项研究工作将为燃气轮机叶片多通道壁面喷射冷却的优化和应用提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat Transfer and Flow Characteristics of Channel Impingement Cooling Structure at Leading Edge Inside Turbine Blades Using Large Eddy Simulation
As a main part of multi-channel wall jet cooling structure, channel impingement cooling is a cooling strategy of great concern at the leading edge inside of the turbine blade. In this paper, heat transfer and flow behavior in the channel impingement cooling structure are investigated by Large Eddy Simulation (LES). The results imply that impingement created by curvature-induced centrifugal instabilities in the turning region of the cooling channel is dominated by a streamwise vortex system containing a counter-rotating Dean vortex, which presents high heat transfer streaks along the streamwise direction on the target wall. The intensely unsteady nature of the cooling jet induced by a lack of equilibrium between the pressure gradient and the centrifugal force are precisely captured herein by LES. An attaching-wall jet formed on the outer wall downstream of the cooling channel has highly three-dimensional characteristics not observed by Reynolds-averaged Navier-Stokes equations (RANS). Heat transfer augmentation on the target wall of the cooling channel is mainly due to the intensifying streamwise vortex system developing in the turning region as driven by the centrifugal force. This research work will provide a reference for the optimization and application of multi-channel wall jet cooling for gas turbine blades.
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CiteScore
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