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Rapid gust response simulation of large civil aircraft using computational fluid dynamics

机译:使用计算流体力学的大型民用飞机快速阵风响应仿真

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摘要

Several critical load cases during the aircraft design process result from atmospheric turbulence. Thus, rapidly performable and highly accurate dynamic response simulations are required to analyse a wide range of parameters. A method is proposed to predict dynamic loads on an elastically trimmed, large civil aircraft using computational fluid dynamics in conjunction with model reduction. A small-sized modal basis is computed by sampling the aerodynamic response at discrete frequencies and applying proper orthogonal decomposition. The linear operator of the Reynolds-averaged Navier-Stokes equations plus turbulence model is then projected onto the subspace spanned by this basis. The resulting reduced system is solved at an arbitrary number of frequencies to analyse responses to 1-cos gusts very efficiently. Lift coefficient and surface pressure distribution are compared with full-order, non-linear, unsteady time-marching simulations to verify the method. Overall, the reduced-order model predicts highly accurate global coefficients and surface loads at a fraction of the computational cost, which is an important step towards the aircraft loads process relying on computational fluid dynamics.
机译:飞机设计过程中的几种关键载荷情况是由大气湍流引起的。因此,需要快速执行和高精度的动态响应仿真来分析各种参数。提出了一种使用计算流体动力学结合模型简化来预测弹性修剪的大型民用飞机上的动态载荷的方法。通过在离散频率上采样空气动力响应并应用适当的正交分解,可以计算出较小的模态基础。然后,将雷诺平均Navier-Stokes方程加湍流模型的线性算子投影到由此基础所跨越的子空间上。可以在任意数量的频率下求解所得的简化系统,从而非常有效地分析对1-cos阵风的响应。将升力系数和表面压力分布与全阶,非线性,不稳定行进时间仿真进行比较,以验证该方法。总体而言,降阶模型以极低的计算成本预测了高度精确的全局系数和表面载荷,这是依靠计算流体动力学朝飞机载荷过程迈出的重要一步。

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