Aerodynamic and Acoustic Interaction Effects of Adjacent Propellers in Forward Flight

空气动力学 声学 推力 噪音(视频) 螺旋桨 推进 空气声学 旋转(数学) 航空航天工程 物理 工程类 海洋工程 计算机科学 声压 人工智能 图像(数学)
作者
Alessandro Zarri,Alexandros Koutsoukos,Francesco Avallone
出处
期刊:AIAA Aviation 2019 Forum 被引量:5
标识
DOI:10.2514/6.2023-4489
摘要

View Video Presentation: https://doi.org/10.2514/6.2023-4489.vid Distributed electric propulsion systems are an emerging technology with the potential of revolutionizing the design and performance of aircraft. When propellers are located in close proximity, they can be subjected to aerodynamic interactions, which affect the far-field noise. In this paper, we study an array of three co-rotating and adjacent propellers to describe both the aerodynamic and acoustic installation effects. A scale-resolving CFD simulation based on the Lattice-Boltzmann/Very-Large-Eddy-Simulation method is used to solve the flow field around the propellers. An acoustic analogy integral approach calculates the far-field noise. Findings show that the helical vortical structures, generated at the tip of each blade undergo a flow deformation at the location of interaction. This causes the loading of each blade to vary during the rotation. Consequently, the unsteady loading noise becomes a dominant noise generation mechanism, driving the noise levels and directivity. It is also shown that introducing a non-zero relative phase angle between the propellers results in a reduction of the unsteady thrust, leading to a mitigation of the unsteady-loading tonal components along the rotation axis. Additionally, the relative phase angle causes constructive/destructive acoustic interference, as demonstrated by analyzing the noise emitted simultaneously by the three propellers.
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