Strain Response and Aerodynamic Damping of a Swirl Distortion Generator Using Computational Fluid Dynamics

A. Hayden, A. Untăroiu
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引用次数: 2

Abstract

Boundary layer ingestion (BLI) concepts have become a prominent topic in research and development due to their increase in fuel efficiency for aircraft. Virginia Tech has developed the StreamVane™, a secondary flow distortion generator, which can be used to efficiently test BLI and its aeromechanical effects on turbomachinery. To ensure the safety of this system, the complex vanes within StreamVanes must be further analyzed structurally and aerodynamically. In this paper, the induced strain of two common vane shapes at three different operating conditions is computationally determined. Along with these observations, the aerodynamic damping of these vanes are calculated to predict flutter conditions at the same three operating points. Steady CFD calculations are done to acquire the aerodynamic pressure loading on the vanes. Finite element analysis (FEA) is performed to obtain the strain and modal response of the StreamVane structure. The mode shapes and steady CFD are used to initialize an unsteady CFD analysis which determines the aerodynamic damping of the vanes. The testcase used for this evaluation was specifically designed to overstep the structural limits of a StreamVane, and the results provide an efficient computational method to observe flutter conditions of stationary systems.
基于计算流体动力学的旋流畸变发生器应变响应与气动阻尼
边界层吸入(BLI)概念由于能提高飞机的燃油效率而成为研究和开发的一个突出课题。弗吉尼亚理工大学开发了StreamVane™,这是一种二次流畸变发生器,可用于有效地测试BLI及其对涡轮机械的气动力学影响。为了保证该系统的安全运行,必须对streamvane中的复杂叶片进行进一步的结构和气动分析。本文对两种常见叶片形状在三种不同工况下的诱导应变进行了计算。根据这些观测结果,计算了这些叶片的气动阻尼,以预测相同三个工作点的颤振情况。通过稳态CFD计算获得了叶片上的气动压力载荷。通过有限元分析获得了叶片结构的应变和模态响应。利用模态振型和定常CFD初始化非定常CFD分析,确定叶片的气动阻尼。用于评估的测试用例是专门设计的,以超越叶片的结构限制,结果提供了一种有效的计算方法来观察静止系统的颤振条件。
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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