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A Correction Method for Unsteady Transonic Aerodynamics

机译:非定常跨音速空气动力学的校正方法

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This paper presents a new method for transonic pitching airfoils based on a RANS CFD study and the Theodorsen model of an oscillating pitching flat plate. This study quantifies the deviation of the lift coefficient predictions using CFD from that obtained using the Theodorsen model, which is based on the incompressible potential flow assumption. The present method corrects this theoretical model by modulating the Theodorsen functions by coefficient functions that depend on the reduced frequency and the Mach number. It is demonstrated that the modified theoretical model predicts lift coefficient in good agreement with the CFD results in the Mach number range from incompressible (M=0.2) to transonic (M=0.755) flow for a range of reduced frequencies typical of transonic flutter. The simulations are first validated by comparing pitching XACA0012 airfoil results with experimental results at transonic flight conditions, which establishes the requirements for a grid converged unsteady transonic solution. The hysteresis loop, C_l versus a, attains a grid independent solution that compares well with experiment. The present correction method will guide the development of a new state space model for the Variable Camber Continuous Trailing Edge Flap (VCCTEF) system and eventually a new transfer function that will be incorporated in a new aeroelastic framework leading to an appropriate transonic flutter model for use in the future aircraft systems in development under the NASA Advanced Air Transportation Technologies (AATT) project.
机译:本文基于RANS CFD研究和振荡俯仰平板的Theodorsen模型,提出了一种跨音速俯仰机翼的新方法。这项研究将基于CFD的升力系数预测与基于不可压缩的潜在流量假设的Theodorsen模型所获得的预测误差进行了量化。本方法通过由系数函数调制西奥多森函数来校正该理论模型,所述系数函数取决于降低的频率和马赫数。结果表明,对于跨音速颤动典型的降低频率范围,改进的理论模型可以预测马赫数范围从不可压缩(M = 0.2)到跨音速(M = 0.755)流的CFD结果与CFD结果非常吻合。首先通过将俯仰XACA0012机翼结果与跨音速飞行条件下的实验结果进行比较来验证仿真,从而确定了对网格收敛的非稳态跨音速解决方案的要求。磁滞回线C_1与a相比,获得了与实验无关的独立于网格的解决方案。本校正方法将指导可变腔连续后缘襟翼(VCCTEF)系统的新状态空间模型的开发,并最终将新的传递函数合并到新的气动弹性框架中,从而产生适合使用的跨音速颤振模型在美国国家航空航天局先进航空运输技术(AATT)项目下正在开发的飞机系统。

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    《》|2019年|1388-1422|共35页
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