用于发动机缸套设计和先进概念筛选的高保真建模工具

IF 1.2 4区 工程技术 Q3 ACOUSTICS
J. Winkler, J. Mendoza, C. A. Reimann, K. Homma, Jose S. Alonso
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引用次数: 1

摘要

随着飞机发动机趋向于超高旁通比,导致风扇压力比降低,风扇转速降低,从而叶片通过频率降低,飞机发动机缸套设计空间发生了巨大变化。这一结果也是由于可用声学处理面积(轴向范围)和厚度(衬垫深度)的相关减小。因此,目前需要能够满足多种物理约束并同时提供增强的噪声衰减能力的新型声学衬垫技术。此外,增材制造的最新进展使人们能够考虑传统上仅限于蜂窝芯的复杂衬里背衬结构。本文概述了发动机缸套建模,并描述了关键的物理机制,重点介绍了低保真度到高保真度工具的使用,如经验模型和商用软件,如COMSOL、Actran和PowerFLOW。研究表明,高保真度工具是评估和构建未来复杂线性结构的关键工具。对传统单自由度衬垫的声学性能进行了系统的预测研究,并与实验数据进行了比较。简要讨论了掠流和偏流的影响。最后,对一种更先进的结构——超材料进行了建模,并对其声学性能进行了讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High fidelity modeling tools for engine liner design and screening of advanced concepts
With aircraft engines trending toward ultra-high bypass ratios, resulting in lower fan pressure ratios, lower fan RPM, and therefore lower blade pass frequency, the aircraft engine liner design space has been dramatically altered. This result is also due to the associated reduction in both the available acoustic treatment area (axial extent) as well as thickness (liner depth). As a consequence, there is current need for novel acoustic liner technologies that are able to meet multiple physical constraints and simultaneously provide enhanced noise attenuation capabilities. In addition, recent advances in additive manufacturing have enabled the consideration of complex liner backing structures that would traditionally be limited to honeycomb cores. This paper provides an overview of engine liner modeling and a description of the key physical mechanisms, with some emphasis on the use of low to high-fidelity tools such as empirical models and commercially available software such as COMSOL, Actran, and PowerFLOW. It is shown that the higher fidelity tools are a critical enabler for the evaluation and construction of future complex liner structures. A systematic study is conducted to predict the acoustic performance of traditional single degree of freedom liners and comparisons are made to experimental data. The effects of grazing flow and bias flow are briefly addressed. Finally, a more advanced structure, a metamaterial, is modeled and the acoustic performance is discussed.
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来源期刊
International Journal of Aeroacoustics
International Journal of Aeroacoustics ACOUSTICS-ENGINEERING, AEROSPACE
CiteScore
2.10
自引率
10.00%
发文量
38
审稿时长
>12 weeks
期刊介绍: International Journal of Aeroacoustics is a peer-reviewed journal publishing developments in all areas of fundamental and applied aeroacoustics. Fundamental topics include advances in understanding aeroacoustics phenomena; applied topics include all aspects of civil and military aircraft, automobile and high speed train aeroacoustics, and the impact of acoustics on structures. As well as original contributions, state of the art reviews and surveys will be published. Subtopics include, among others, jet mixing noise; screech tones; broadband shock associated noise and methods for suppression; the near-ground acoustic environment of Short Take-Off and Vertical Landing (STOVL) aircraft; weapons bay aeroacoustics, cavity acoustics, closed-loop feedback control of aeroacoustic phenomena; computational aeroacoustics including high fidelity numerical simulations, and analytical acoustics.
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