涡扇航空发动机气动降噪的发展与进展

IF 11.5 1区 工程技术 Q1 ENGINEERING, AEROSPACE Progress in Aerospace Sciences Pub Date : 2022-04-01 DOI:10.1016/j.paerosci.2021.100796
Xiran Liu , Dan Zhao , Di Guan , Sid Becker , Dakun Sun , Xiaofeng Sun
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引用次数: 23

摘要

涡扇发动机具有推力大、燃油效率高等优点,是商用飞机上应用最广泛的推进系统之一。为了减少由涡扇发动机驱动的飞机产生的噪音,已经开发了许多控制方法。主要噪声源包括风扇和高速“热”和“冷”射流。在工程应用中,噪声控制方法包括:1)主动控制,2)几何形状优化,3)被动控制(包括声边界控制)。由于几何形状优化和被动控制被认为是最可靠、最有效的降噪方法,因此受到发动机制造商的青睐。在这项工作中,我们简要概述了在涡扇发动机上应用或实施的具有巨大潜力的降噪技术。综述了涡扇发动机在主动控制、被动控制和几何形状优化等方面的研究进展,旨在为下一代低噪声涡扇发动机的研制提供有益的指导。最后通过实例对热粘性和涡旋脱落的基本降噪机理进行了综述。
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Development and progress in aeroacoustic noise reduction on turbofan aeroengines

Turbofan engines are one of the most popular propulsion systems used in commercial aircraft due to their high thrust and good fuel efficiency. To reduce noise generated from turbofan engines-powered aircraft, a number of control approaches have been developed. The dominant noise sources include the fan and the high-speed ‘hot’ and ‘cold’ jet. In engineering applications, the noise control approaches include: 1) active control, 2) geometric shape optimization, and 3) passive control (including acoustic boundary control). Because they are considered the most reliable and effective noise reduction methods, the geometric shape optimization and passive control are preferable by the engine manufacturers. In this work, we briefly overview the noise reduction technologies that have great potential to be applied or implemented on turbofan engines. The research and development progress made on the active control, passive control, and geometric shape optimization are reviewed and discussed, aiming to provide an useful guidance on next-generation low-noise turbofan engines. The fundamental noise damping mechanisms of thermos-viscous and vortex shedding are finally overviewed via cases studies.

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来源期刊
Progress in Aerospace Sciences
Progress in Aerospace Sciences 工程技术-工程:宇航
CiteScore
20.20
自引率
3.10%
发文量
41
审稿时长
5 months
期刊介绍: "Progress in Aerospace Sciences" is a prestigious international review journal focusing on research in aerospace sciences and its applications in research organizations, industry, and universities. The journal aims to appeal to a wide range of readers and provide valuable information. The primary content of the journal consists of specially commissioned review articles. These articles serve to collate the latest advancements in the expansive field of aerospace sciences. Unlike other journals, there are no restrictions on the length of papers. Authors are encouraged to furnish specialist readers with a clear and concise summary of recent work, while also providing enough detail for general aerospace readers to stay updated on developments in fields beyond their own expertise.
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