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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering >Aerodynamic analysis and design of Busemann biplane: towards efficient supersonic flight
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Aerodynamic analysis and design of Busemann biplane: towards efficient supersonic flight

机译:Busemann双翼飞机的空气动力学分析和设计:迈向高效的超音速飞行

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Aiming to realize a low-drag supersonic transport, Busemann biplane concept was adopted in this study. Two- and three-dimensional (2D and 3D) biplanes were analysed and designed to improve their aerodynamic performance using computational fluid dynamics. It was confirmed that 3D biplane wings have better aerodynamic-performance areas than 2D biplane airfoils. A winglet is also useful for improvement of their aerodynamic performance. Aerodynamic characteristics of these biplanes at their off-design conditions were also analysed. In 3D wings, a flow choking and its attendant hysteresis as starting problems, which arise when the biplanes accelerate from low Mach numbers, disappear at lower Mach numbers than those in 2D airfoils. It was confirmed that hinged slats and flaps are effective to settle these issues. Finally, interference effects of a body with the biplanes were investigated. When the biplane wings are affected by the expansion waves from the body, their aerodynamic performance at the design Mach number and the starting Mach number are better and lower than those of their isolated wings, respectively. A 3D biplane wing obtained by an inverse-design method was applied to the body. The wing of this wing–body configuration achieves higher aerodynamic performance than the 2D flat-plate airfoil at sufficient lift conditions, which is the almost identical performance of 2D biplane airfoils.
机译:为了实现低阻力超音速运输,本研究采用了Busemann双翼飞机概念。对二维和二维(2D和3D)双翼飞机进行了分析和设计,以使用计算流体动力学来改善其空气动力学性能。证实了3D双翼飞机机翼比2D双翼飞机机翼具有更好的空气动力性能区域。小翼也可用于改善其空气动力学性能。还分析了这些双翼飞机在非设计状态下的空气动力学特性。在3D机翼中,当双翼飞机从低马赫数加速时出现的气流阻塞和随之而来的滞后是起始问题,而马赫数比2D机翼低时,就消失了。可以确认,铰接的板条和折板可有效解决这些问题。最后,研究了双平面对人体的干扰作用。当双翼机翼受到机体膨胀波的影响时,它们在设计马赫数和起始马赫数下的空气动力学性能分别比其孤立机翼好和低。通过逆向设计方法获得的3D双翼机翼被应用于人体。在足够的升力条件下,这种机翼-机身配置的机翼比2D平板机翼具有更高的空气动力学性能,这几乎是2D双翼飞机机翼的相同性能。

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