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CFD ANALYSES OF HPT BLADE AIR DELIVERY SYSTEM WITH AND WITHOUT IMPELLERS

机译:带叶轮和不带叶轮的HPT叶片送风系统的CFD分析

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In the design of a HPT blade cooling air delivery system, sufficient supply pressure is required to guarantee HPT blades are working properly in the high temperature environment. A design goal is to set a pressure level at the blade inlet that will prevent the ingestion of gaspath air into the blades which is caused by pressure fluctuations under various operating conditions and other uncertainties. Traditional 1-D design tools are not sophisticated enough for detailed system analysis. Therefore, CFD (Computational Fluid Dynamics) analysis was utilized for designing HPT blade cooling air delivery system to guarantee meeting the supply pressure requirement. Two HPT blade air delivery systems were explored. The baseline is a cooling air delivery system without radial impellers. It provides a simplistic design at low manufacturing cost, however CFD analysis shows that the system has a larger pressure loss at the broach slot entrance and delivers low supply pressure. The alternative is a cooling air delivery system with radial impellers. CFD analysis shows that the system with impellers results in much better aerodynamic performance at the broach slots and provides high supply pressure, but comes with the price of high manufacturing cost and lower TSFC due to the parasitic drag induced by impellers. For the alternative approach, three high solidity impeller designs were analyzed. The alternative approaches analyzed had inlet angles of 0°, 30°, 90° and exit angles of 0°, respectively. Comparisons of detailed aerodynamic performance are presented in the paper. CFD simulation reveals that the source of pressure loss without impellers is caused by mismatch of the swirl ratio at broach slot entrance. CFD results show that a system with radial impellers produces a better matched swirl ratio at broach slot entrance. Radial impellers enhance aerodynamic performance and improve pressure distribution within broach slots.
机译:在HPT刀片冷却空气输送系统的设计中,需要足够的供气压力,以确保HPT刀片在高温环境下能够正常工作。一个设计目标是在叶片入口处设置一个压力水平,以防止由于各种操作条件和其他不确定性下的压力波动而引起的气路空气吸入叶片。传统的一维设计工具不够复杂,无法进行详细的系统分析。因此,使用CFD(计算流体动力学)分析来设计HPT叶片冷却空气输送系统,以确保满足供应压力要求。探索了两种HPT叶片空气输送系统。基线是没有径向叶轮的冷却空气输送系统。它以较低的制造成本提供了简化的设计,但是CFD分析表明,该系统在拉刀槽入口处具有较大的压力损失,并提供了较低的供应压力。替代方案是带有径向叶轮的冷却空气输送系统。 CFD分析表明,带叶轮的系统在拉刀槽处具有更好的空气动力学性能,并提供了很高的供应压力,但由于叶轮引起的寄生阻力,导致制造成本高,TSFC降低。对于替代方法,分析了三种高强度叶轮设计。分析的替代方法分别具有0°,30°,90°的入口角和0°的出口角。本文介绍了详细的空气动力学性能的比较。 CFD仿真显示,没有叶轮的压力损失源是由拉刀槽入口处的涡流比不匹配引起的。 CFD结果表明,带有径向叶轮的系统在拉刀槽入口处产生更好的匹配涡流比。径向叶轮可提高空气动力学性能,并改善拉刀槽内的压力分布。

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