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Aerostructural Design Optimization of an Adaptive Morphing Trailing Edge Wing

机译:自适应变形后缘机翼的航空结构设计优化

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Adaptive morphing trailing edge technology offers the potential to decrease the fuel burn of transonic transport aircraft by allowing wings to dynamically adjust to changing flight conditions. Current aircraft use flap and aileron droop to adjust the wing during flight. However, this approach offers only a limited number of degrees of freedom, and the gaps in the wing created when using these devices introduce unnecessary drag. Morphing trailing edge technology offers more degrees of freedom, with a seamless interface between the wing and control surfaces. In this paper we seek to quantify the extent to which this technology can improve the fuel burn of transonic commercial transport sized aircraft. Starting from the undefonned Common Research Model (uCRM) geometry, we perform fixed-planform aerostructural optimizations of a standard wing, a wing retrofitted with a morphing trailing edge, and a clean sheet wing designed with the morphing trailing edge. The wing retrofitted with the morphing trailing edge improved the fuel burn as effectively as the full wing redesign without morphing. Additional fuel burn reductions were observed for the clean sheet design. The morphing trailing edge decreased the fuel burn by performing load alleviation at the maneuver condition, weakening the trade-off between cruise performance and maneuver structural constraints, resulting in lighter wingboxes and more aerodynamically efficient cruise configurations.
机译:自适应变形后缘技术通过允许机翼动态调整以适应不断变化的飞行条件,具有减少跨音速运输机燃油消耗的潜力。当前的飞机在飞行过程中使用襟翼和副翼下垂来调节机翼。然而,这种方法仅提供有限数量的自由度,并且当使用这些装置时在机翼中产生的间隙会引入不必要的阻力。变形后缘技术提供了更大的自由度,机翼和控制表面之间具有无缝接口。在本文中,我们试图量化该技术可以改善跨音速商业运输型飞机的燃油消耗的程度。从不受挑战的通用研究模型(uCRM)几何结构开始,我们对标准机翼,采用变型后缘进行改装的机翼以及采用变型后缘设计的无尘单板机翼进行固定平面的航空结构优化。机翼加装了变形后缘,与不变形的整个机翼重新设计一样,有效地改善了燃油消耗。对于无尘纸设计,还观察到了另外的燃料燃烧减少。变形后缘通过在机动状态下减轻负荷来减少燃油消耗,削弱了巡航性能和机动结构约束之间的权衡,从而使机翼箱更轻,空气动力学效率更高。

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