考虑阵列射流冲击的圆柱和沟膜冷却设计的共轭传热

Lukas Fischer, A. Sanchez, Fabian Schleich, Fabian Feller, Richard Raffelt, M. Pfitzner
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引用次数: 1

摘要

采用不同的外部冷却设计、热障涂层(TBC)和内部冷却方法进行了数值膜冷却研究。求解了含共轭传热的稳态Reynolds平均Navier Stokes (RANS)方程。TBC和叶片材料的传热系数和材料性质决定了Biot数相对于实际发动机的适当比例。对外表面和叶片与壁面界面的冷却效率进行了评价。研究了三种气膜冷却设计,即标准射流孔气膜冷却、横向气膜冷却和优化气膜冷却。此外,还研究了阵列射流冲击和对流通道冷却对外部和界面冷却效率的影响。当吹气比为0.3 ~ 1.2时,射流雷诺数在3100 ~ 12300之间变化。根据所测密度比,主流雷诺数在4500 ~ 11000之间变化。两种设计的外冷效率均优于标准的积液箱。在界面冷却效率方面,与标准射流孔设计相比,沟槽设计的效率提高了0.1。此外,还研究了槽内的吸入量、外热流密度和换热系数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Conjugate Heat Transfer of Cylindrical and Trenched Film Cooling Designs With Array Jet Impingement
A numerical film cooling study involving different external cooling designs, thermal barrier coating (TBC) and internal cooling methods is performed. The steady Reynolds Averaged Navier Stokes (RANS) equations are solved including conjugate heat transfer (CHT). The heat transfer coefficient and material properties of the TBC and vane material lead to a proper scaling of the Biot number with respect to real engines. The cooling efficiency of the external surface and of the wall interface between TBC and vane are evaluated. Three film cooling designs, namely standard effusion hole film cooling as well as transverse and optimized trenches are investigated. Moreover, the effect of array jet impingement and convective channel cooling is investigated onto the external and interface cooling efficiency. The jet Reynolds number of the impingement and effusion cooling is varied between 3100–12300 at blowing ratios between 0.3 and 1.2. The main-stream Reynolds number varied between 4500 and 11000 depending on the tested density ratio. The external cooling efficiency of both trench designs showed to be superior to the standard effusion case. With respect to the interface cooling efficiency, there was an improvement in efficiency of 0.1 visible for the trenched designs compared to the standard effusion hole design. Moreover, flow ingestion into the trenches and the external heat flux and heat transfer coefficient are investigated.
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