入口和出口绕圆的增材制造孔的印刷性能和整体冷却性能

Emma M. Veley, K. Thole, Michael T. Furgeson, D. Bogard
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引用次数: 6

摘要

为了提高燃气轮机硬件的冷却效率,人们研究了不同形状的气膜冷却孔。最近,通过增材制造分配的设计自由度,独特的设计修改成为可能。作为一个例子,为气膜冷却孔创建一个圆形的入口可以减轻入口的分离。本研究通过利用增材制造技术在发动机规模上制造异形膜冷却孔,探索了各种几何特征。对印刷性能和冷却性能进行了评价。通过这项研究,打印出了一些与设计意图不同的具有孔入口和出口圆的增材制造孔。与设计意图的最大偏差发生在位于孔入口背风侧的渣渣粗糙度特征上。测量的总体有效性表明,与建造的尖锐入口相比,建造的入口圆角减少了孔内对流,减少了射流混合。包括一个出口圆角,防止过度建造扩散器出口,也发现减少射流混合。从这项研究中获得的一个特别见解是孔内对流冷却对整体冷却性能的重要性。增材制造导致的孔内粗糙度增加了孔内的对流冷却,但也增加了冷却剂离开孔时的射流混合。增加的射流混合导致下游喷射的整体效率降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Printability and Overall Cooling Performance of Additively Manufactured Holes With Inlet and Exit Rounding
To improve cooling effectiveness of gas turbine hardware, various film cooling hole shapes have previously been researched. Unique design modifications have recently been made possible through the design freedom allotted by additive manufacturing. As one example, creating a rounded inlet for a film-cooling hole can mitigate separation at the inlet. This study explores various geometric features by exploiting the uses of additive manufacturing for shaped film cooling holes at engine scale. Both printability and cooling performance were evaluated. Resulting from this study, additively manufactured holes with hole inlet and exit rounding were printed with some variations from the design intent. The largest deviations from the design intent occurred from dross roughness features located on the leeward side of the hole inlet. The measured overall effectiveness indicated that an as-built inlet fillet decreased in-hole convection as well as decreased jet mixing compared to the as-built sharp inlet. Including an exit fillet, which prevented an overbuilt diffuser exit, was also found to decrease jet mixing. A particular insight gained from this study is the importance of the convective cooling within the hole to the overall cooling performance. In-hole roughness, which is a result of additive manufacturing, increased convective cooling within the holes but also increased jet mixing as the coolant exited the hole. The increased jet mixing caused low overall effectiveness downstream of injection.
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