An experimental modal decomposition method to compute sound power of multi-dimensional acoustic waves from turbocharger compressors

IF 0.3 4区 工程技术 Q4 ACOUSTICS Noise Control Engineering Journal Pub Date : 2023-03-01 DOI:10.3397/1/377111
P. Sriganesh, A. Selamet
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Abstract

The automotive turbocharger compressor in the present experimental study features a ported shroud casing treatment, which is known to elevate tonal noise at the blade-pass frequency (BPF) while reducing broadband whoosh noise and providing higher boost pressures at low mass flow rates. The high operating rotational speeds of such modern turbocharger compressors push the BPF to ranges where acoustic wave propagation is multi-dimensional within the compressor ducting. Simultaneously propagating acoustic modes at the BPF result in strong circumferential and axial variation of in-duct sound pressure levels. This poses a challenge for acoustic characterization and comparison of different hardware since typical measurement techniques do not consider the sensitivity of acoustic pressure to the measurement location. The current work utilizes a steady-flow turbocharger gas stand with a unique rotating compressor inlet duct fitted with multiple wall-mounted dynamic pressure transducers capable of performing a modal decomposition of the acoustic field. The decomposition is done using time-resolved acoustic pressure measurements from different orientations of the rotating inlet duct during steady compressor operation. The resulting modal amplitudes are then used to determine the sound power level, a quantity that is independent of the acoustic pressure measurement locations. Therefore, in addition to revealing the modal content of noise at the compressor inlet, the rotating inlet duct experimental setup better characterizes the acoustic field with sound power levels across the operating flow range at various compressor rotational speeds.
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计算涡轮增压器压缩机多维声波声功率的实验模态分解方法
本实验研究中的汽车涡轮增压器压缩机采用了带端口的护罩处理,已知该处理可以提高叶片通过频率(BPF)下的音调噪声,同时降低宽带嗖嗖声,并在低质量流量下提供更高的增压压力。这种现代涡轮增压器压缩机的高工作转速将BPF推至声波在压缩机管道内传播为多维的范围。在BPF处同时传播的声学模式导致管道内声压级的强周向和轴向变化。这对不同硬件的声学表征和比较提出了挑战,因为典型的测量技术不考虑声压对测量位置的敏感性。目前的工作利用了一个稳定流动的涡轮增压器气体支架,该支架具有一个独特的旋转压缩机进气管,该进气管配有多个壁装式动态压力传感器,能够对声场进行模态分解。在压缩机稳定运行期间,使用来自旋转进气管不同方向的时间分辨声压测量值进行分解。然后使用所得到的模态振幅来确定声功率水平,该量与声压测量位置无关。因此,除了揭示压缩机入口处的噪声模态内容外,旋转进气道实验装置还可以更好地表征在不同压缩机转速下整个工作流量范围内的声场和声功率水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Noise Control Engineering Journal
Noise Control Engineering Journal 工程技术-工程:综合
CiteScore
0.90
自引率
25.00%
发文量
37
审稿时长
3 months
期刊介绍: NCEJ is the pre-eminent academic journal of noise control. It is the International Journal of the Institute of Noise Control Engineering of the USA. It is also produced with the participation and assistance of the Korean Society of Noise and Vibration Engineering (KSNVE). NCEJ reaches noise control professionals around the world, covering over 50 national noise control societies and institutes. INCE encourages you to submit your next paper to NCEJ. Choosing NCEJ: Provides the opportunity to reach a global audience of NCE professionals, academics, and students; Enhances the prestige of your work; Validates your work by formal peer review.
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