涡轮喷嘴端壁幻影冷却与复合角度压力侧喷射

Kevin Liu, Hongzhou Xu, M. Fox
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引用次数: 4

摘要

涡轮喷嘴端壁的冷却由于其复杂的流场涉及强二次流而具有挑战性。为了满足当今燃气轮机应用所要求的更高的涡轮入口温度,需要越来越有效的冷却方案。因此,为了冷却翼型压力侧和尾缘延伸区附近的端壁面,利用翼型膜冷却和压力侧排出槽的冷却空气,称为“幻影冷却”。研究了复合角度压力侧喷射对喷嘴端壁表面的影响。测量是在高速线性叶栅中进行的,该叶栅由三个喷嘴叶片和四个流道组成。研究了两种具有相似气膜冷却设计的喷嘴试验模型,一种具有轴压侧气膜冷却排和尾缘槽;另一种具有相同的冷却特性,但采用复合角度喷射,瞄准测试端壁。通过传质类比,采用压敏涂料(PSP)技术测量了端壁的虚影冷却效果。给出了在每个测试用例中四个质量流比值的端壁面上的二维虚影冷却效率分布。在此基础上,对沿轴向的模态冷却效率分布进行了俯仰平均,并对复合角度喷射的效果进行了比较。结果表明,端壁虚影冷却效率随着MFR的增加而显著提高。压力侧槽的复合角度也显著增强了端壁虚影冷却。对于联合喷射,在端壁下游延伸区,幻像冷却效果远高于仅压力侧槽喷射。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Turbine Nozzle Endwall Phantom Cooling With Compound Angled Pressure Side Injection
Cooling of the turbine nozzle endwall is challenging due to its complex flow field involving strong secondary flows. Increasingly-effective cooling schemes are required to meet the higher turbine inlet temperatures required by today’s gas turbine applications. Therefore, in order to cool the endwall surface near the pressure side of the airfoil and the trailing edge extended area, the spent cooling air from the airfoil film cooling and pressure side discharge slots, referred to as “phantom cooling” is utilized. This paper studies the effect of compound angled pressure side injection on nozzle endwall surface. The measurements were conducted in a high speed linear cascade, which consists of three nozzle vanes and four flow passages. Two nozzle test models with a similar film cooling design were investigated, one with an axial pressure side film cooling row and trailing edge slots; the other with the same cooling features but with compound angled injection, aiming at the test endwall. Phantom cooling effectiveness on the endwall was measured using a Pressure Sensitive Paint (PSP) technique through the mass transfer analogy. Two-dimensional phantom cooling effectiveness distributions on the endwall surface are presented for four MFR (Mass Flow Ratio) values in each test case. Then the phantom cooling effectiveness distributions are pitchwise-averaged along the axial direction and comparisons were made to show the effect of the compound angled injection. The results indicated that the endwall phantom cooling effectiveness increases with the MFR significantly. A compound angle of the pressure side slots also enhanced the endwall phantom cooling significantly. For combined injections, the phantom cooling effectiveness is much higher than the pressure side slots injection only in the endwall downstream extended area.
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