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Trade Study of 3D Co-Flow Jet Wing for Cruise and Takeoff/Landing Performance

机译:用于巡航和起飞/着陆性能的3D并流喷气机翼的贸易研究

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This paper presents a trade study of co-flow jet (CFJ) flow control wings. Several geometry parameters are studied, including injection and suction locations, cavity configurations, airfoil thickness and wing aspect ratio. The simulations are performed at Mach number 0.10 and 0.15 to simulate the takeoff/landing, and cruise condition of a general aviation aircraft. Unlike the conventional flaps and slats systems or other active flow control techniques, CFJ wings contains no moving part and can be used for both cruise and takeoff/landing. A low C_μ with low energy expenditure can be used at cruise and high C_μ with very high lift can be used for takeoff/landing. At cruise, the CFJ wing with a 21% thickness achieves a maximum aerodynamic L/D of 38.8 at a remarkably high C_L of 1.22. When the CFJ pumping power P is taken into account, the corrected aerodynamic efficiency defined as L/(D + P/V_∞) is 25.2 at AoA = 5° and C_μ of 0.04. The takeoff/landing performance is also excellent with a maximum C_L of 4.7 achieved at C_μ of 0.28 and AoA of 40.0°. For both cruise and takeoff/landing, the CFJ wing moment is low and hence small tail force is needed for trimming purpose. CFJ is particularly advantageous to be used with thick airfoil such as 21% to achieve high cruise lift coefficient and high aerodynamic efficiency. For the 21% thickness airfoil, the CFJ wing has a drop of peak aerodynamic efficiency of 5.5%, but has the lift coefficient increase by 110%. A thick airfoil also provides higher structure strength, lighter weight, and more inner volume. This study demonstrates that the CFJ airfoil is not only very effective to drastically increase the maximum lift, but also able to achieve high aerodynamic efficiency with very high lift at cruise condition at a small angle of attack due to its low energy expenditure. Overall the CFJ wing is particularly suitable for a light and compact wing with ultra-high wing loading and high efficiency. The extraordinary CFJ wing performance may bring a radically different design philosophy to revolutionize the future aircraft design. The CFJ wing will open a door to a new class of aircraft design.
机译:本文介绍了同流射流(CFJ)流量控制机翼的行业研究。研究了几个几何参数,包括喷射和吸入位置,腔体配置,机翼厚度和机翼长宽比。在0.10马赫数和0.15马赫数下执行模拟,以模拟通用航空飞机的起飞/着陆和巡航状况。与传统的襟翼和板条系统或其他主动流控制技术不同,CFJ机翼不包含活动部件,可用于巡航和起飞/降落。巡航时可以使用能量消耗低的低C_μ,升力很高的较高C_μ可以用于起飞/降落。巡航时,厚度为21%的CFJ机翼在1.22的高C_L时实现了38.8的最大空气动力学L / D。当考虑CFJ抽气功率P时,在AoA = 5°和C_μ为0.04时,定义为L /(D + P /V_∞)的校正空气动力学效率为25.2。起飞/着陆性能也很出色,在C_μ为0.28和AoA为40.0°时,最大C_L为4.7。对于巡航和起飞/着陆,CFJ机翼力矩都很小,因此需要较小的尾翼力来进行修整。 CFJ特别适合与厚翼型(例如21%)配合使用,以实现高巡航升力系数和高空气动力学效率。对于厚度为21%的机翼,CFJ机翼的峰值空气动力效率降低了5.5%,但升力系数却提高了110%。较厚的机翼还可以提供更高的结构强度,更轻的重量和更大的内部体积。这项研究表明,CFJ机翼不仅非常有效地极大地增加了最大升力,而且由于其低能量消耗,在巡航状态下以很小的迎角在很高的升力下也能达到很高的空气动力学效率。总体而言,CFJ机翼特别适合于具有超高机翼载荷和高效率的轻巧紧凑型机翼。 CFJ机翼出色的性能可能带来截然不同的设计理念,从而彻底改变未来的飞机设计。 CFJ机翼将为新型飞机设计打开一扇门。

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