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Three dimensional aeroelastic analyses considering free-play nonlinearity using computational fluid dynamics/computational structural dynamics coupling

机译:三维空气弹性分析考虑使用计算流体动力学/计算结构动力学耦合的自由游戏非线性

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Most of the previous studies on free-play aeroelasticity were based on the linear aerodynamic theory, which cannot consider the aerodynamic nonlinear effects. This paper proposes a framework of computational fluid dynamics/computational structural dynamics (CFD/CSD) coupling approach that can deal with the three dimensional aeroelastic problems with both the free-play nonlinearity and the aerodynamic nonlinearity. The fictitious mass method is used to construct the reduced structural equations of motion and the switching point is detected using the bisection method. The adaptive time step obtained by the bisection method is returned to the CFD solver so that both the structural and the fluid equations are integrated using the same time step. An all-movable wing with free-play at the root is considered for numerical studies. Results demonstrate the CFD/CSD coupling method can predict the stable limit cycle oscillation (LCO) effectively. The initial condition study shows that the LCO behavior is subcritical and the hysteresis response can be predicted in time domain effectively by the presented method. The viscous effect is shown to increase the LCO boundary and shift the LCO amplitude to a larger velocity in transonic regime. The LCO boundary is determined from subsonic to transonic Mach numbers. The transonic dip in LCO boundary is found by the CFD/CSD coupling method, but the equivalent linearization with doublet lattice method fails to predict this phenomenon. From the results of this study, the LCO boundary is shown to be 43.5% below the flutter boundary at most. (C) 2020 Elsevier Ltd. All rights reserved.
机译:以往的自由游动气动弹性研究大多基于线性气动理论,不能考虑气动非线性效应。本文提出了一种计算流体力学/计算结构动力学(CFD/CSD)耦合方法的框架,该方法可以处理同时具有自由间隙非线性和气动非线性的三维气动弹性问题。虚拟质量法用于构造简化的结构运动方程,并使用对分法检测开关点。通过对分法获得的自适应时间步长返回到CFD解算器,以便使用相同的时间步长对结构方程和流体方程进行积分。在数值研究中,考虑了根部有自由间隙的全活动机翼。结果表明,CFD/CSD耦合方法可以有效地预测稳定极限环振荡(LCO)。初始条件研究表明,LCO行为是亚临界的,该方法可以有效地在时域预测滞后响应。在跨音速范围内,粘性效应会增加LCO边界,并将LCO振幅移到更大的速度。LCO边界由亚音速到跨音速马赫数确定。用CFD/CSD耦合方法发现了LCO边界的跨音速倾斜,但用双重晶格方法的等效线性化无法预测这种现象。从本研究的结果来看,LCO边界最多比颤振边界低43.5%。(C) 2020爱思唯尔有限公司版权所有。

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