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Integrated Process Chain for Aerostructural Wing Optimization and Application to an NLF Forward Swept Composite Wing

机译:用于空气结构翼优化和应用于NLF前向扫掠复合翼的综合工艺链

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This contribution introduces an integrated process chain for aerostructural wing optimization based on high fidelity simulation methods. The architecture of this process chain enables two of the most promising future technologies in commercial aircraft design in the context of multidisciplinary design optimization (MDO). These technologies are natural laminar flow (NLF) and aeroelastic tailoring using carbon fiber reinforced plastics (CFRP). With this new approach the application of MDO to an NLF forward swept composite wing will be possible. The main feature of the process chain is the hierarchical decomposition of the optimization problem into two levels. On the highest level the wing planform including twist and airfoil thickness distributions as well as the orthotropy direction of the composite structure will be optimized. The lower optimization level includes the wing box sizing for essential load cases considering the static aeroelastic deformations. Additionally, the airfoil shapes are transferred from a given NLF wing design. The natural laminar flow is considered by prescribing laminar-turbulent transition locations. Results of wing design studies and a wing optimization using the process chain are presented for a forward swept wing aircraft configuration. The wing optimization with 12 design parameters shows a fuel burn reduction in the order of 9% for the design mission.
机译:该贡献引入了基于高保真仿真方法的气动翼优化综合过程链。该过程链的架构在多学科设计优化(MDO)的背景下,在商业飞机设计中启用了两种最有前途的未来技术。这些技术是使用碳纤维增强塑料(CFRP)的天然层流(NLF)和空气弹性剪裁。通过这种新方法,MDO将MDO应用于NLF前向扫掠复合机翼。过程链的主要特征是优化问题的分层分解成两个级别。在最高水平上,将优化包括扭曲和翼型厚度分布的机翼平面图以及复合结构的正向方向。较低的优化水平包括考虑到静态空气弹性变形的必要负载箱的机翼盒。另外,翼型形状从给定的NLF翼设计转移。通过规定层状湍流过渡位置考虑自然层流。介绍翼设计研究的结果和使用过程链的机翼优化以用于前进的扫翼飞机配置。具有12个设计参数的机翼优化显示了设计任务的9%的燃料燃烧量。

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