Harmonic Method for Simulating Unsteady Multispool Interactions

Feng Wang, L. di Mare
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Abstract

Modern civil jet engines arrange components on spools with different rotational speeds in order to improve compressor stall margin, overall engine performance, etc. The unsteady interactions among these components can be significant and should be considered at an early design stage if possible. URANS is a common approach to simulate these unsteady effects, but the disparity in time scales in a multispool simulation can lead to expensive URANS simulations. Harmonic methods are effective and efficient approaches to simulate unsteady interactions among turbomachinery components, but their applications to multispool simulations remains a challenge. The objective of this paper is to address this challenge. This paper extends the Favre-averaged non-linear harmonic method to simulate multispool turbomachinery components using a unified bladerow interface which transfer disturbances with arbitrary blade counts at any rotational speed. The regularization of non-reflective boundary condition is described for certain circumferential wave number of the zero-frequency mode. The capability of the proposed approach is demonstrated by simulating the transfer of hot streaks through full 3D high- and intermediate-pressure turbines in a three-shaft engine. The temperature distributions from the harmonic method show good agreement with direct unsteady simulation and the radial migration of the hot streaks towards the hub are captured very well by the proposed harmonic method. The Favre-averaged temperature field also shows good agreement with direct unsteady simulation. The required computational cost of the harmonic method can be roughly two orders of magnitude smaller than the direct unsteady simulations. This demonstrates the proposed method can be a promising design tool to trace hot streaks in multispool turbines at the early design stage.
模拟非定常多阀芯相互作用的谐波方法
现代民用喷气发动机为了提高压气机失速余量和发动机整体性能等,将部件布置在不同转速的轴上。这些部件之间的非定常相互作用可能是显著的,如果可能的话,应在早期设计阶段考虑。URANS是模拟这些非定常效应的常用方法,但多线轴模拟中时间尺度的差异可能导致URANS模拟成本高昂。谐波方法是模拟叶轮机械部件间非定常相互作用的有效方法,但其在多阀芯仿真中的应用仍然是一个挑战。本文的目标就是解决这一挑战。本文扩展了favre -平均非线性谐波方法,采用统一的叶片界面,在任意转速下传递任意叶片数的扰动,模拟了多轴叶轮机械部件。讨论了零频模式下一定周向波数下非反射边界条件的正则化问题。通过在三轴发动机中模拟热斑在全三维高中压涡轮中的传递,证明了该方法的能力。谐波法得到的温度分布与直接非定常模拟结果吻合较好,并能很好地捕捉到热斑向轮毂的径向迁移。favre -平均温度场与直接非定常模拟结果吻合较好。谐波法所需的计算量比直接非定常模拟的计算量大约小两个数量级。这表明,所提出的方法可以是一个有前途的设计工具,跟踪热条纹在多轴涡轮机的早期设计阶段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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