Abstract Improved rotor aeromechanics predictions using a fluid structure interaction approach
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Improved rotor aeromechanics predictions using a fluid structure interaction approach

机译:使用流体结构相互作用方法改进的转子空气力学预测

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AbstractThe measured HART (Higher harmonic control Aeroacoustic Rotor Test) I data in a descending flight condition is validated using various numerical approaches including CFD (Computational Fluid Dynamics)–CSD (Computational Structural Dynamics) coupled analyses with isolated rotor model and rotor-fuselage model. A CSD-alone approach is also conducted for reference purpose. A three-dimensional (3D) compressible RANS (Reynolds Averaged Navier Stokes) flow solver is employed for the CFD code. Good convergence behavior is found for both coupling analyses. It is observed that the rotor-fuselage model improves the correlation significantly as compared with the measured data. Specifically, the highly oscillating section normal forces signals marked in the advancing and retreating sides of the rotor are captured accurately. Detailed harmonic analysis and the gradient of the airloads signals are observed to prove the validity of the prediction model. The upwash induced due to a fuselage as well as the increased vorticity over the rotor flow fields are attributed to the enhanced correlation. The predicted blade elastic motions and structural moments also indicate improvements with the present rotor-fuselage model.
机译: 摘要 在下降的飞行条件下测得的HART(高谐波控制航空声学转子测试)I数据已使用各种数值方法进行了验证,包括CFD(计算流体力学)-CSD(计算结构动力学)与隔离的转子模型和转子-机身模型耦合分析。还使用了仅使用CSD的方法作为参考。 CFD代码采用了三维(3D)可压缩RANS(雷诺平均Navier斯托克斯)流量求解器。两种耦合分析都发现良好的收敛行为。可以看出,与测量数据相比,转子机身模型显着改善了相关性。具体地,在转子的前进侧和后退侧中标记的高振动部分法向力信号被精确地捕获。观察了详细的谐波分析和空载信号的梯度,证明了预测模型的有效性。由于机身引起的上冲以及转子流场上涡旋的增加归因于增强的相关性。预测的叶片弹性运动和结构力矩也表明当前转子-机身模型得到了改善。

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