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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Analysis of an Additively Manufactured Cooled Ultra Compact Combustor Vane
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Analysis of an Additively Manufactured Cooled Ultra Compact Combustor Vane

机译:一种加粘连的冷却超紧凑型燃烧器叶片分析

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The ultra compact combustor (UCC) aims to increase the thrust-to-weight ratio of an aircraft gas turbine engine by decreasing the size, and thus weight, of the engine's combustor. The configuration of the UCC as a primary combustor enables a unique cooling scheme to be employed for the hybrid guide vane (HGV). A previous effort conducted a computational fluid dynamics (CFD) analysis that evaluated whether it would be possible to cool this vane by drawing in freestream flow at the stagnation region of the airfoil. Based on this study, a cooling scheme was designed and modified with internal supports to make additive manufacturing of the vanes possible. This vane was computationally evaluated comparing the results with those of a solid vane and hollow vane without cooling holes as a demonstration of the improvements offered by this design. Furthermore, the effects of the internal support structure were deemed beneficial to surface cooling when evaluated through comparisons of internal pressure distribution and overall effectiveness. Following the computational study, the vane was manufactured and experimentally evaluated with the results compared to those of an uncooled solid vane. The experimental results validated the computational analysis and demonstrated through pressure and temperature measurements that the cooled vane had a reduced surface temperature compared to the uncooled vane and that pressure distributions supported coolant flow through filmcooling holes.
机译:超紧凑的燃烧器(UCC)旨在通过减小发动机燃烧器的尺寸,从而增加飞机燃气轮机发动机的推力比。作为主燃烧器的UCC的配置使得能够用于混合引导叶片(HGV)的独特的冷却方案。以前的努力进行了计算流体动力学(CFD)分析,其评估是否可以通过在翼型的停滞区域的自由流动中绘制来冷却该叶片。基于该研究,设计了一种冷却方案,用内部支撑设计,以使叶片的添加剂制造。该叶片被计算地评估了与固体叶片和中空叶片的结果进行比较,而无需冷却孔作为该设计提供的改进的示范。此外,当通过内部压力分布和总体效率的比较评估时,内部支撑结构的影响是有益的。在计算研究之后,与未冷却的固体叶片的结果相比,制造和实验评估叶片。实验结果验证了通过压力和温度测量证明了冷却叶片与未冷却叶片相比具有减小的表面温度的压力和温度测量的计算分析,并且该压力分布支撑通过膜冷却孔的冷却剂流动。

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