旋转旋转器的过冷大液滴撞击特性的数值研究

IF 1.1 4区 工程技术 Q3 ENGINEERING, AEROSPACE International Journal of Aerospace Engineering Pub Date : 2024-02-02 DOI:10.1155/2024/1683744
Wei Jia, Feng Zhang
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引用次数: 0

摘要

由过冷大水滴(SLD)引起的飞机发动机结冰对飞行安全构成重大威胁。本文使用 FLUENT UDS 研究了旋转旋翼的 SLD 撞击特性,并基于欧拉法求解了水滴运动的支配方程。水滴破裂采用数量密度方程进行模拟,水滴反弹和飞溅采用半经验模型进行模拟。研究了旋转速度、液滴直径和流入速度对旋转喷丝器 SLD 撞击特性的影响。对 SLD 撞击有了一些新的有价值的认识。结果表明,随着旋转速度的增加,旋转喷丝器的局部收集效率会降低。转速越高,液滴撞击角度越小,液滴反弹和飞溅越强。对于直径小于 111 μm 的液滴,局部收集效率随着液滴直径的增大而提高。然而,当液滴直径超过 111 μm 时,旋转喷丝器前缘附近的局部收集效率会降低。此外,在旋转喷丝器前缘附近,随着流入速度的增加,局部收集效率也会降低。然而,较高的流入速度会导致液滴撞击角增大,从而提高旋转喷丝器尾部附近的局部收集效率。临界撞击角随着流入速度的增加而增大,导致 SLD 的反弹和飞溅更加明显。本文的研究为 SLD 环境下旋转喷管的冰形预测和防冰系统设计提供了有益的帮助。
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Numerical Investigation of Supercooled Large Droplets Impingement Characteristics of the Rotating Spinner
Aircraft engine icing caused by supercooled large droplets (SLD) poses a significant threat to flight safety. In this paper, the SLD impingement characteristics of the rotating spinner were investigated using FLUENT UDS and the governing equations for water droplet motion were solved based on the Eulerian method. The droplet breakup was simulated using the number density equation, while the droplet rebound and splashing were simulated using a semiempirical model. The effects of rotational speed, droplet diameter, and inflow velocity on the SLD impingement characteristics of the rotating spinner were studied. Some new valuable insights have been found for the SLD impingement. The results indicated that as the rotational speed increases, the local collection efficiency of the rotating spinner decreases. Higher rotational speed results in reduced droplet impingement angle and stronger droplet rebound and splashing. For the droplets with diameters smaller than 111 μm, the local collection efficiency increases with the increase of the droplet diameter. However, when the droplet diameter exceeds 111 μm, the local collection efficiency decreases near the leading edge of the rotating spinner. Additionally, the local collection efficiency decreases as the inflow velocity increases near the leading edge of the rotating spinner. However, higher inflow velocities lead to larger droplet impingement angles, resulting in higher local collection efficiency near the tail of the rotating spinner. The critical impingement angle increases with the increase of the inflow velocity, leading to a more pronounced rebound and splashing of SLD. The research in this paper provides useful help for ice shape prediction and anti-icing system design of rotating spinner in SLD environment.
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来源期刊
CiteScore
2.70
自引率
7.10%
发文量
195
审稿时长
22 weeks
期刊介绍: International Journal of Aerospace Engineering aims to serve the international aerospace engineering community through dissemination of scientific knowledge on practical engineering and design methodologies pertaining to aircraft and space vehicles. Original unpublished manuscripts are solicited on all areas of aerospace engineering including but not limited to: -Mechanics of materials and structures- Aerodynamics and fluid mechanics- Dynamics and control- Aeroacoustics- Aeroelasticity- Propulsion and combustion- Avionics and systems- Flight simulation and mechanics- Unmanned air vehicles (UAVs). Review articles on any of the above topics are also welcome.
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