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Aerodynamic noise prediction of a centrifugal fan considering the volute effect using IBEM

Aerodynamic noise prediction of a centrifugal fan considering the volute effect using IBEM
Aerodynamic noise prediction of a centrifugal fan considering the volute effect using IBEM
Customer demands for quieter centrifugal fans in the industry have brought their noise to the forefront. It is found that dipole sources on the surfaces of the rotating impeller and volute are the main acoustic noise sources. The volute effect is seen to have a significant influence on the radiation characters of the fan, although this is frequently ignored by previous studies. Hence, the indirect boundary element method (IBEM) is employed to study the noise of an industrial forward-curved centrifugal fan and to take the effect of volute reflection and scattering of the sound wave into consideration. A large eddy simulation (LES) is used to gain reliable pressure fluctuations on the surfaces of volute and rotating blades. Then the FW-H equation and Lowson equation are applied to calculate the dipole sources on the surfaces of the volute and the blades respectively. The predicted aerodynamic noise of the fan with and without the volute is compared to experiment. The results indicate that the pressure fluctuations on the volute surfaces, especially on the tongue surface, are the main dipole source. It is also found that the application of IBEM can improve the prediction accuracy greatly, especially for the blade passing frequency and its higher harmonics.
0003-682X
182 - 190
Chen, Jian
572feaaa-bdbd-4da1-9edc-d460edd9e03a
He, Yuan
c03b2dc1-168a-4ce6-96c8-1d86e8249042
Gui, Li
0683919e-5a02-483d-997a-b39f1f794c34
Wang, Canxin
929ecb74-ac15-43b2-9d4f-ac6184770526
Chen, Liu
d6cc44b9-6cc7-4be8-8b38-c96395cdd0cb
Li, Yuanrui
d6847b7d-f541-483c-91d3-9f172487e9d6
Chen, Jian
572feaaa-bdbd-4da1-9edc-d460edd9e03a
He, Yuan
c03b2dc1-168a-4ce6-96c8-1d86e8249042
Gui, Li
0683919e-5a02-483d-997a-b39f1f794c34
Wang, Canxin
929ecb74-ac15-43b2-9d4f-ac6184770526
Chen, Liu
d6cc44b9-6cc7-4be8-8b38-c96395cdd0cb
Li, Yuanrui
d6847b7d-f541-483c-91d3-9f172487e9d6

Chen, Jian, He, Yuan, Gui, Li, Wang, Canxin, Chen, Liu and Li, Yuanrui (2017) Aerodynamic noise prediction of a centrifugal fan considering the volute effect using IBEM. Applied Acoustics, 132, 182 - 190. (doi:10.1016/j.apacoust.2017.10.015).

Record type: Article

Abstract

Customer demands for quieter centrifugal fans in the industry have brought their noise to the forefront. It is found that dipole sources on the surfaces of the rotating impeller and volute are the main acoustic noise sources. The volute effect is seen to have a significant influence on the radiation characters of the fan, although this is frequently ignored by previous studies. Hence, the indirect boundary element method (IBEM) is employed to study the noise of an industrial forward-curved centrifugal fan and to take the effect of volute reflection and scattering of the sound wave into consideration. A large eddy simulation (LES) is used to gain reliable pressure fluctuations on the surfaces of volute and rotating blades. Then the FW-H equation and Lowson equation are applied to calculate the dipole sources on the surfaces of the volute and the blades respectively. The predicted aerodynamic noise of the fan with and without the volute is compared to experiment. The results indicate that the pressure fluctuations on the volute surfaces, especially on the tongue surface, are the main dipole source. It is also found that the application of IBEM can improve the prediction accuracy greatly, especially for the blade passing frequency and its higher harmonics.

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More information

Accepted/In Press date: 10 October 2017
Published date: 27 November 2017

Identifiers

Local EPrints ID: 505981
URI: http://eprints.soton.ac.uk/id/eprint/505981
ISSN: 0003-682X
PURE UUID: 67be331b-58f5-43ab-97a4-d095fb16d6ff

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Date deposited: 24 Oct 2025 16:54
Last modified: 24 Oct 2025 16:54

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Contributors

Author: Jian Chen
Author: Yuan He
Author: Li Gui
Author: Canxin Wang
Author: Liu Chen
Author: Yuanrui Li

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