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Aerodynamic interaction between propellers of a distributed-propulsion system in forward flight

机译:向前飞行中分布式推进系统螺旋桨之间的空气动力学相互作用

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This article describes an experimental investigation of the aerodynamic interaction that occurs between distributed propellers in forward flight. To this end, three propellers were installed in close proximity in a wind tunnel, and the changes in their performance, flow-field characteristics, and noise production were quantified using internal force sensors, total-pressure probes, particle-image velocimetry (PIV), and microphones recessed in the wind-tunnel wall. At the thrust setting corresponding to maximum efficiency, the efficiency of the middle propeller is found to drop by 1.5% due to the interaction with the adjacent propellers, for a tip clearance equal to 4% of the propeller radius. For a given blade-pitch angle, this performance penalty increases with angle of attack, decreasing thrust setting, or a more upstream propeller position, while being insensitive to the rotation direction and relative blade phase angle. Furthermore, the velocities induced by the adjacent propeller slipstreams lead to local loading variations on the propeller disk of 5% - 10% of the average disk loading. Exploratory noise measurements show that the interaction leads to different tonal noise waveforms of the system when compared to the superposition of isolated propellers. Moreover, the results confirm that an active control of the relative blade phase angles between propellers can effectively modify the directivity pattern of the system. (C) 2021 The Author(s). Published by Elsevier Masson SAS.
机译:本文介绍了向前飞行中分布式推进器之间发生的空气动力学相互作用的实验研究。为此,三个螺旋桨安装在风隧道附近,并且使用内部力传感器,总压力探针,粒子图像VELOCIMETRY(PIV)来定量其性能,流场特性和噪声生产的变化和在风隧道壁中嵌入的麦克风。在对应于最大效率的推力设置,由于与相邻螺旋桨的相互作用,发现中间螺旋桨的效率下降1.5%,用于尖端间隙等于螺旋桨半径的4%。对于给定的叶片桨距角,这种性能损失随着攻角,减小推力设置或更高的螺旋桨位置而增加,同时对旋转方向和相对叶片相角不敏感。此外,相邻的螺旋桨滑动诱导的速度导致螺旋桨盘的局部加载变化为平均盘载的5%-10%。探索性噪声测量表明,与隔离螺旋桨的叠加相比,交互导致系统的不同音调波形。此外,结果证实,螺旋桨之间的相对刀片相位角的主动控制可以有效地修改系统的方向性模式。 (c)2021提交人。由Elsevier Masson SA出版。

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