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Aerodynamic and Aeroacoustic Performance of a Propeller Propulsion System with Swirl-Recovery Vanes

机译:带有旋流回收叶片的螺旋桨推进系统的空气动力学和空气声学性能

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Swirl-recovery vanes (SRVs) enhance propulsive efficiency by converting the rotational kinetic energy in a propeller slipstream into additional thrust. This paper discusses the aerodynamic and aeroacoustic impact of the installation of a set of SRVs downstream of a single-rotating propeller. Experiments were carried out in a large low-speed wind tunnel, whereas simulations were performed by solving the Reynolds-averaged Navier-Stokes equations. Favorable comparisons between the experimental and numerical slipstream data validated the simulations, which predicted a maximum propulsive-efficiency increase of 0.7% with the current design of the SRVs. This can be improved further by optimizing the pitch distribution of the SRVs. The upstream effect of the SRVs on the time-averaged propeller performance was negligible. Yet, small but systematic unsteady propeller loads were measured with a peak-to-peak amplitude of at most 2% of the time-averaged loading, occurring at a frequency corresponding to the five SRV passages during one revolution. The downstream interaction was one order of magnitude stronger, with unsteady loading on the SRVs with a peak-to-peak amplitude of about 20% of the time-averaged load. The interaction mechanisms caused an increase of the tonal noise levels of 3-7 dB, with the noise penalty decreasing with increasing propeller thrust setting.
机译:旋流恢复叶片(SRV)通过将螺旋桨滑流中的旋转动能转换为附加推力来提高推进效率。本文讨论了在单旋转螺旋桨下游安装一组SRV的空气动力学和空气声学影响。实验是在大型低速风洞中进行的,而模拟是通过求解雷诺兹平均Navier-Stokes方程进行的。实验和数值滑流数据之间的有利比较验证了仿真,该仿真预测,在目前的SRV设计中,最大推进效率将提高0.7%。通过优化SRV的音高分布,可以进一步改善这一点。 SRV对时间平均螺旋桨性能的上游影响可以忽略不计。然而,测量的是很小但系统性不稳定的螺旋桨负载,其峰峰值幅度最多为时间平均负载的2%,发生在与一转的五个SRV通道相对应的频率上。下游相互作用要强一个数量级,SRV上的不稳定负载,其峰峰值幅度约为时间平均负载的20%。相互作用机制导致音调噪音水平增加了3-7 dB,并且随着螺旋桨推力设置的增加,噪音损失减小。

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