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Computational Aero-Acoustics Simulation of Automotive Radiator Fan Noise

机译:汽车散热器风扇噪声的计算航空声学仿真

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Flow bench and engine testing can be used to detect flow induced noise, but understanding the fundamental mechanisms of such noise generation is necessary for developing an effective design. This paper describes Computational Aero-Acoustic (CAA) analyses performed to obtain the broad-band and BPF noise sources A computational aero-acoustics simulation on the aerodynamic noise generation of an automotive radiator fan assembly is carried out. Three-dimensional Computational Fluid Dynamics (CFD) simulation of the unsteady flow field was performed including the entire impeller and shroud to obtain the source of an audible broad-band flow noise between 2 to 4 kHz. Static pressure probes placed around the outer-periphery and at the center of the impeller inlet side and, at the shroud cavities to capture the noise sources. The static pressure at all probe locations were FFT (Fast Fourier Transform) processed and sound pressure level (SPL) was calculated. The CAA simulations discussed in this paper identifies the SPL from the fan outer-periphery probes show the dominant source of blade passing frequency (BPF) and the broad-band noise. The BPF level is the strongest in fan outer-peripheral region because of large pressure fluctuations as a result of blade-passing. The broad-band noise on the other hand is the results of tip-leakage interactions with shroud surface and, vortex-vortex and vortex-surface interactions.
机译:可以使用流动台和发动机测试来检测流动引起的噪声,但是了解这种噪声产生的基本机制对于开发有效的设计是必要的。本文介绍了为获得宽带和BPF噪声源而进行的计算航空声学(CAA)分析。对汽车散热器风扇组件的空气动力学噪声产生进行了计算空气声学仿真。对非恒定流场进行了三维计算流体动力学(CFD)模拟,包括整个叶轮和导流罩,以获得2至4 kHz之间可听宽带流动噪声的来源。静压探头放置在外围周围,并位于叶轮入口侧的中心,并位于导流罩腔中,以捕获噪声源。所有探头位置的静压均经过FFT(快速傅立叶变换)处理,并计算出声压级(SPL)。本文中讨论的CAA仿真从风扇外设探针中识别了SPL,显示了叶片通过频率(BPF)和宽带噪声的主要来源。由于风扇通过叶片导致压力波动较大,因此BPF级别在风扇外围区域最强。另一方面,宽带噪声是与罩表面的尖端泄漏相互作用以及涡旋-涡旋和涡旋-表面相互作用的结果。

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