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The Low-Noise Potential of Distributed Propulsion on a Catamaran Aircraft

机译:双体船飞机上分布式推进的低噪声潜力

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摘要

The noise shielding potential of an inboard-wing catamaran aircraft when coupled with distributed propulsion is examined. Here, only low-frequency jet noise from mid-wing-mounted engines is considered. Because low frequencies are the most difficult to shield, these calculations put a lower bound on the potential shielding benefit. In this proof-of-concept study, simple physical models are used to describe the 3-D scattering of jet noise by conceptualized catamaran aircraft. The Fast Scattering Code is used to predict noise levels on and about the aircraft. Shielding results are presented for several catamaran type geometries and simple noise source configurations representative of distributed propulsion radiation. Computational analyses are presented that demonstrate the shielding benefits of distributed propulsion and of increasing the width of the inboard wing. Also, sample calculations using the FSC are presented that demonstrate additional noise reduction on the aircraft fuselage by the use of acoustic liners on the inboard wing trailing edge. A full conceptual aircraft design would have to be analyzed over a complete mission to more accurately quantify community noise levels and aircraft performance, but the present shielding calculations show that a large acoustic benefit could be achieved by combining distributed propulsion and liner technology with a twin-fuselage planform.
机译:当与分布式推进相结合时,检查了机翼双体飞机的噪声屏蔽潜力。在这里,仅考虑来自中翼发动机的低频喷气噪声。由于低频是最难屏蔽的,因此这些计算为潜在的屏蔽优势设定了下限。在此概念验证研究中,简单的物理模型用于描述概念双体飞机对喷气飞机噪声的3D散射。快速散射代码用于预测飞机及其周围的噪音水平。给出了几种双体船型几何结构和代表分布式推进辐射的简单噪声源配置的屏蔽结果。提出的计算分析证明了分布式推进和增加机翼宽度的屏蔽作用。此外,还介绍了使用FSC进行的样本计算,这些实验证明了通过在机翼后缘上使用隔音衬垫,可以进一步降低飞机机身的噪声。必须对整个概念飞机的设计进行完整的任务分析,以更准确地量化社区的噪音水平和飞机性能,但是目前的屏蔽计算表明,将分布式推进和班轮技术与双螺旋桨技术相结合可以实现巨大的声学效益。机身平面图。

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