Numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves

Abstract The paper presents a numerical investigation on the use of helical groove to reduce flow-induced noise from a circular cylinder. The study primarily explores the effects of groove pitch, groove depth ratio and groove profile on aerodynamic noise over a Reynolds number range of 2.8 × 104 to...

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Main Authors: Tao Li, Ningzhou Lu
Format: Article
Language:English
Published: Springer 2025-07-01
Series:Discover Applied Sciences
Subjects:
Online Access:https://doi.org/10.1007/s42452-025-07325-2
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author Tao Li
Ningzhou Lu
author_facet Tao Li
Ningzhou Lu
author_sort Tao Li
collection DOAJ
description Abstract The paper presents a numerical investigation on the use of helical groove to reduce flow-induced noise from a circular cylinder. The study primarily explores the effects of groove pitch, groove depth ratio and groove profile on aerodynamic noise over a Reynolds number range of 2.8 × 104 to 8.6 × 104. Currently, there are limited studies focusing on the influence of helical grooves on the flow-induced noise around circular cylinders. Acoustic results reveal that at a Reynolds number of 4.1 × 104, when the groove pitch is 400 mm, the groove depth ratio is 0.01, and the groove profile is circular, the maximum sound pressure level (SPL) at the far-field monitoring point is reduced by up to 18 dB compared to the baseline model. However, as the pitch decreases from 400 to 100 mm, the noise reduction effect diminishes. Increasing the groove depth ratio from 0.01 to 0.03 results in only a 4.7 dB reduction in peak SPL compared to the baseline. The groove profile also plays a critical role, with circular grooves showing superior noise reduction performance compared to triangular ones. The sound directivity of the cylinders exhibits symmetry. For the cylinder with circular grooves (400 mm pitch, size ratio of 0.01), the OASPL is higher than that of the baseline model in the angular range of 0–45°, and lower in the range of 45–90°. Flow simulation results indicate that the observed noise reduction in the far field is primarily attributed to weakened vortex shedding in the wake region. The study concludes that selecting appropriate groove pitch, depth ratio, and profile can effectively mitigate noise generated by bluff body flows. These findings offer valuable insights for noise control in various engineering applications.
format Article
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institution Kabale University
issn 3004-9261
language English
publishDate 2025-07-01
publisher Springer
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series Discover Applied Sciences
spelling doaj-art-917670ebe463414faf61c4e13982897a2025-08-20T04:01:40ZengSpringerDiscover Applied Sciences3004-92612025-07-017713010.1007/s42452-025-07325-2Numerical investigation on noise and flow characteristics of a circular cylinder with helical groovesTao Li0Ningzhou Lu1Wenzhou PolytechnicNingbo Xingbang Biochem. Device Co., LtdAbstract The paper presents a numerical investigation on the use of helical groove to reduce flow-induced noise from a circular cylinder. The study primarily explores the effects of groove pitch, groove depth ratio and groove profile on aerodynamic noise over a Reynolds number range of 2.8 × 104 to 8.6 × 104. Currently, there are limited studies focusing on the influence of helical grooves on the flow-induced noise around circular cylinders. Acoustic results reveal that at a Reynolds number of 4.1 × 104, when the groove pitch is 400 mm, the groove depth ratio is 0.01, and the groove profile is circular, the maximum sound pressure level (SPL) at the far-field monitoring point is reduced by up to 18 dB compared to the baseline model. However, as the pitch decreases from 400 to 100 mm, the noise reduction effect diminishes. Increasing the groove depth ratio from 0.01 to 0.03 results in only a 4.7 dB reduction in peak SPL compared to the baseline. The groove profile also plays a critical role, with circular grooves showing superior noise reduction performance compared to triangular ones. The sound directivity of the cylinders exhibits symmetry. For the cylinder with circular grooves (400 mm pitch, size ratio of 0.01), the OASPL is higher than that of the baseline model in the angular range of 0–45°, and lower in the range of 45–90°. Flow simulation results indicate that the observed noise reduction in the far field is primarily attributed to weakened vortex shedding in the wake region. The study concludes that selecting appropriate groove pitch, depth ratio, and profile can effectively mitigate noise generated by bluff body flows. These findings offer valuable insights for noise control in various engineering applications.https://doi.org/10.1007/s42452-025-07325-2Helical groovesAerodynamic noiseCircular cylinderPeak sound pressure levelVortex intensity
spellingShingle Tao Li
Ningzhou Lu
Numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves
Discover Applied Sciences
Helical grooves
Aerodynamic noise
Circular cylinder
Peak sound pressure level
Vortex intensity
title Numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves
title_full Numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves
title_fullStr Numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves
title_full_unstemmed Numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves
title_short Numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves
title_sort numerical investigation on noise and flow characteristics of a circular cylinder with helical grooves
topic Helical grooves
Aerodynamic noise
Circular cylinder
Peak sound pressure level
Vortex intensity
url https://doi.org/10.1007/s42452-025-07325-2
work_keys_str_mv AT taoli numericalinvestigationonnoiseandflowcharacteristicsofacircularcylinderwithhelicalgrooves
AT ningzhoulu numericalinvestigationonnoiseandflowcharacteristicsofacircularcylinderwithhelicalgrooves