Study of the Impact of Multi-Row Interaction on Flutter Analysis for a Representative LPT Geometry

A. Sotillo, J. Gallardo
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引用次数: 2

Abstract

Acoustic reflections and multiple blade-row effects have an impact on aeroelastic behavior, which can change the aerodynamic damping by a significant amount. However, conventional flutter analyses neglect these effects as they ignore any information about the multistage unsteady interaction. In order to capture them, the authors of this paper have developed a multistage coupling methodology for ITP’s in-house unsteady 3D frequency-domain linearized RANS solver. The current approach allows carrying out CFD simulations on a multistage environment built upon an arbitrary number of blade-rows; each one of them could also have an arbitrary number of frequencies and/or interblade phase angles. The coupling mechanism between consecutive blade-rows arises in a somewhat straightforward way after the solutions are decomposed as the sum of several spinning modes in the inter-row boundaries and the continuity of acoustic, vortical and entropic waves is enforced. This method is suitable for flutter and forced response computations, and also for tonal noise propagation. The focus of this paper is on the study of multiple blade-row effects on flutter stability margin. A brief analysis of results for a couple of simple test cases is presented to demonstrate the correctness of the method. Then, a detailed flutter analysis for a representative LPT geometry is performed and the results are compared with a single row conventional analysis. The impact of neighboring and further blade-rows, as well as spinning modes scattered from the fundamental circumferential mode, are accounted for in the unsteady aerodynamic loading of the excited blade.
多排相互作用对典型LPT几何结构颤振分析的影响研究
声反射和多叶排效应对气动弹性性能有影响,可以显著改变气动阻尼。然而,传统的颤振分析忽略了这些影响,因为它们忽略了任何关于多级非定常相互作用的信息。为了捕获它们,本文作者开发了ITP内部非定常三维频域线性化RANS求解器的多级耦合方法。目前的方法允许在基于任意数量叶片排的多级环境中进行CFD模拟;它们中的每一个也可以有任意数量的频率和/或叶片间相位角。将解分解为行间边界若干自旋模式的和,并强制声波、旋波和熵波的连续性后,连续叶片排之间的耦合机制就比较直观了。该方法适用于颤振和强迫响应的计算,也适用于音调噪声的传播。本文重点研究了多叶排对颤振稳定裕度的影响。对几个简单测试用例的结果进行了简要分析,以证明该方法的正确性。然后,对具有代表性的LPT几何结构进行了详细的颤振分析,并与单排常规分析结果进行了比较。在受激叶片的非定常气动载荷中,考虑了相邻和更远的叶片排的影响,以及从基本周向模式中分散出来的旋转模式。
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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