Active and Passive Camber Morphing for Helicopter Rotors towards Performance Improvements in Hover and Vertical Flight

K. Vidyarthi, R. Breuker, M. Pavel, Y. Zahoor, M. Voskuijl
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Abstract

Rotor morphing has been investigated in the past for improvement of rotor performance, either for reduction of rotor power demand or for vibratory load alleviation. The present study investigates the application of camber morphing for improvement of rotor performance in hover and vertical flight conditions, with a particular focus on the combination of camber morphing systems and variable RPM rotors. Camber morphing utilizes a smooth flap at the trailing edge of the rotor blade to modify the camber of blade airfoil sections without excessive drag penalties. Two different camber morphing systems will be investigated in this study, namely the active and passive systems. Passive camber morphing, which combines camber morphing with the variable speed rotor concept is the unique aspect of camber morphing which will be the primary focus of this study. The active system can be actuated at frequencies higher than 1/rev of the rotor and requires external power input for functioning. The passive system can be controlled only by varying the RPM of the rotor and requires no additional energy input. Therefore, the passive system is expected to show larger net performance benefits. Variable RPM rotors in themselves show potential towards the reduction of rotor power demand but are largely ineffective for low-speed applications. The combination of camber morphing and the variable speed rotor shows larger performance benefits than those obtained from the two technologies independent of each other. The two technologies, when combined in passive camber morphing, can remedy each other’s deficiencies and improve the overall rotor performance. The use of camber morphing shows more benefit for operating points at or near the edge of the flight envelope since the rotor blade sections encounter high average angles of attack for these operating points. Vertical climb and hover at high altitude are examples of flight conditions investigated. Overall, passive camber morphing shows a larger performance benefit as compared to the active system.
直升机旋翼主动和被动弧度变形对悬停和垂直飞行性能的改善
为了改善转子的性能,降低转子的功率需求或减轻转子的振动载荷,过去对转子变形进行了研究。本研究探讨了在悬停和垂直飞行条件下,弧面变形在改善旋翼性能方面的应用,重点研究了弧面变形系统与可变转速旋翼的结合。弧度变形利用平滑皮瓣在转子叶片的后缘,以修改弧度叶片翼型部分没有过多的阻力处罚。本研究将研究两种不同的曲面变形系统,即主动系统和被动系统。被动弧面变形是弧面变形的一个独特方面,它将弧面变形与变速转子的概念相结合,这将是本研究的重点。主动系统可以在高于转子1/rev的频率下被驱动,并且需要外部电源输入才能运行。被动系统只能通过改变转子的转速来控制,不需要额外的能量输入。因此,被动式系统有望显示出更大的净性能效益。可变转速转子本身显示出减少转子功率需求的潜力,但在低速应用中基本上无效。弧面变形与变速转子相结合,比单独使用两种技术所获得的性能效益更大。两种技术在被动弧度变形中相结合,可以弥补彼此的不足,提高转子的整体性能。在飞行包线边缘或附近的操作点,使用弧度变形显示出更多的好处,因为这些操作点的转子叶片截面遇到高平均攻角。垂直爬升和高空悬停是飞行条件研究的例子。总的来说,与主动系统相比,被动弧度变形显示出更大的性能优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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