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Prediction of the Rotor Aeromechanics in Descending Flight using Mixed Variational Geometrically Exact Beam Model and CFD Coupled Analysis

机译:混合变分几何精确梁模型与CFD耦合分析预测旋翼下降过程中的转子力学。

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This paper presents prediction of the rotor aeromechanics for HART Ⅱ experiment in a descending flight. The HART Ⅱ was conducted to improve understanding of the Blade-Vortex Interaction (BVI) phenomena. For precise predictions of the aeromechanics of the HART Ⅱ, CSD/CFD coupled analyses were conducted based on the delta load approach. In the CSD model, the mixed variational geometrically exact beam model was used to obtain the blade nonlinear behavior, and a CFD flow solver based on unstructured meshes was used for predicting the blade aerodynamic loads. The present beam model has advantages that displacements, internal forces/moments, and linear/angular momenta can be obtained directly. For the delta load approach, a finite-state dynamic inflow model was used to analyze trim condition for initial step in the present CSD model. The present results are compared with the measurement on the HART Ⅱ rotor blades. The structural results show that the predicted flap deflection is quite similar with that of the measurement, but the torsional and lag deflections are under-predicted compared to those of the measurement.
机译:本文介绍了HARTⅡ实验中下降飞行过程中转子空气力学的预测。进行HARTⅡ是为了增进对叶片-涡旋相互作用(BVI)现象的理解。为了精确预测HARTⅡ的空气力学,基于增量负荷法进行了CSD / CFD耦合分析。在CSD模型中,使用混合变分几何精确梁模型来获得叶片非线性行为,并使用基于非结构化网格的CFD流量求解器来预测叶片空气动力载荷。本梁模型的优点是可以直接获得位移,内力/力矩以及线性/角动量。对于增量负荷法,使用有限状态动态流入模型来分析当前CSD模型中初始步骤的修整条件。将当前结果与在HARTⅡ转子叶片上的测量结果进行了比较。结构结果表明,预测的襟翼挠度与测量值非常相似,但与测量值相比,扭转和滞后挠度的预测不足。

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