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Design of a counter rotating fan using a multidisciplinary and multifidelity optimisation under high level of restrictions

机译:在高水平限制下使用多学科和多尺度优化的计数器旋转风扇的设计

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A model scale ducted counter-rotating fan was designed by DLR, ONERA, COMOTI and Safran Aircraft Engines within the frame of the EU-project COBRA, (Europe-Russia cooperation within FP7 program coordinated by ONERA for the European side and CIAM for the Russian side). The design was very challenging due to the multidisciplinary aspects of the problem and the high number of very restrictive constraints. This work is based on the previous EU-project VITAL (within FP6 program), objectives of which have been motivated by the ACARE-goals, namely reducing noise by 10 dB, NO_x by 60% and the specific fuel consumption by 20%. The COBRA project investigated further different technical solutions to overcome the insufficient noise performance of the VITAL CRTF. An acoustic level reduction by 3 dB for all acoustic operating points has been defined as target compared to the best VITAL CRTF. To achieve these goals, a higher bypass ratio is explored resulting in much lower blade tip speeds and blade count while maintaining good aerodynamic performances. The multidisciplinary approach and the numerical tools used are described. The final CRTF geometry is based on a multiobjective and multifidelity optimisation method and derived from an initial geometry (V0) provided by Safran Aircraft Engines. During the optimisation process, all created members are evaluated with 3D RANS calculations for the CRTF aerodynamics performance, and FEM calculations for the blade structural properties. A simple acoustic evaluation provided by ONERA using steady calculation results allows to estimate the CRTF acoustic level at approach condition. The number of blades chosen fixed during the optimisation is 11 blades for the front fan and 8 for the rear fan. More than 100 free parameters are used to characterize one blade geometry, which is defined by five profiles evenly distributed in the spanwise direction. The final geometry (V4) of the counter-rotating fan achieves an efficiency similar to the previous VITAL CRTF at design point but reduces the noise of -3 dB at approach operating point, while satisfying the mechanical constraint of titanium and maintaining a very strict range of torque ratio as well as a very low residual swirl. Concerning this last point, the multifidelity optimisation method has been very helpful to respond the high level of requirements.
机译:模型规模导管的反旋转风扇是由欧盟 - 项目Cobra框架内的DLR,Onera,Comotian和Safran飞机发动机设计的(欧洲 - 俄罗斯合作,由Onera为欧洲方面为俄罗斯的CONA边)。由于问题的多学科方面和大量限制性限制,设计非常具有挑战性。这项工作基于以前的欧盟项目至关重要(FP6计划内),其目标是由相对目标的动机,即将噪声降低10 dB,NO_X达60%,具体的燃料消耗量为20%。 COBRA项目调查了进一步不同的技术解决方案,以克服重要CRTF的不足噪声性能。与最佳重要CRTF相比,所有声学操作点的声水平降低3 dB被定义为目标。为了实现这些目标,探索了更高的旁路比率,导致刀片尖端速度和刀片计数大得多,同时保持良好的空气动力学性能。描述了多学科方法和使用的数值工具。最终的CRTF几何形状基于多目标和多尺度优化方法,并从Safran飞机发动机提供的初始几何(V0)中导出。在优化过程中,所有创建的成员都是用3D RAN计算的CRTF空气动力学性能的3D RAN计算,以及用于叶片结构特性的FEM计算。 Onera使用稳定计算结果提供的简单声学评估允许在接近条件下估计CRTF声学电平。在优化期间固定的叶片的数量是11叶片,用于前风扇和用于后风扇的8。超过100个免费参数用于表征一个刀片几何图形,该刀片几何图形是由均匀分布在南方方向上的五个配置文件。反向旋转风扇的最终几何(V4)实现了与前一个重要的CRTF在设计点上类似的效率,但在接近的操作点处降低-3 dB的噪声,同时满足钛的机械约束并保持非常严格的范围扭矩比以及非常低的残余旋流。关于最后一点,多尺度优化方法对响应高级别的要求非常有帮助。

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