Coherence-to-multiscale transition of shear-layer vortex shedding in a closed side-branch junction

This paper investigates a coherence-to-multiscale transition of shear-layer vortex shedding in a closed side-branch junction and quantifies how geometric perturbations modify (i) the spectral distribution of pressure fluctuations across frequencies and (ii) the spatial footprint of the dominant-frequency oscillations. Large-eddy simulations are analyzed using spectral proper orthogonal decomposition (SPOD) for 16 geometries with side-branch diameters D side = 24, 32, 40, and 48 mm and lip fillet-chamfer diameters D cham = 0, 10, 20, and 30 mm. After statistically steady states are reached, we characterize the dominant shedding frequency, the temporal standard deviation of pressure fluctuations, the leading SPOD-mode energy fraction and its spatial footprint, and the time-averaged shear-layer length and thickness. Increasing the geometric dimensions reduces the dominant shedding frequency and amplifies pressure fluctuations, while the main-frequency energy fraction decreases and the dominant-response region becomes markedly more spatially dispersed. These trends indicate that the shear layer evolves from a dominant narrowband shedding state, with a strong leading SPOD mode at the shedding frequency, to a broader-band state in which energy is distributed among higher-order modes and broadband fluctuations. This reduction in single-frequency dominance may lower the propensity for lock-in when a flow-acoustic feedback pathway is present. An equivalent characteristic length derived from the shear-layer statistics accounts for the combined effects of the side-branch and lip fillet-chamfer diameters. The resulting Strouhal numbers range from 0.9 to 1.3, supporting a common convective time-scale interpretation of the dominant shedding frequency across the investigated geometries.

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Publication Details

Journal
Nuclear Engineering and Design
Published
2026-10-05
DOI
https://doi.org/10.1016/j.nucengdes.2026.115241
Primary Topic
Fluid Dynamics and Vibration Analysis
Type
article
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article

Coherence-to-multiscale transition of shear-layer vortex shedding in a closed side-branch junction

Xinying Wang, Yunhao Zhang, Haijun Wang, Lang Liu
Nuclear Engineering and Design
Fluid Dynamics and Vibration Analysis
article

Coherence-to-multiscale transition of shear-layer vortex shedding in a closed side-branch junction

Xinying Wang, Yunhao Zhang, Haijun Wang, Lang Liu
article en

Abstract

This paper investigates a coherence-to-multiscale transition of shear-layer vortex shedding in a closed side-branch junction and quantifies how geometric perturbations modify (i) the spectral distribution of pressure fluctuations across frequencies and (ii) the spatial footprint of the dominant-frequency oscillations. Large-eddy simulations are analyzed using spectral proper orthogonal decomposition (SPOD) for 16 geometries with side-branch diameters D side = 24, 32, 40, and 48 mm and lip fillet-chamfer diameters D cham = 0, 10, 20, and 30 mm. After statistically steady states are reached, we characterize the dominant shedding frequency, the temporal standard deviation of pressure fluctuations, the leading SPOD-mode energy fraction and its spatial footprint, and the time-averaged shear-layer length and thickness. Increasing the geometric dimensions reduces the dominant shedding frequency and amplifies pressure fluctuations, while the main-frequency energy fraction decreases and the dominant-response region becomes markedly more spatially dispersed. These trends indicate that the shear layer evolves from a dominant narrowband shedding state, with a strong leading SPOD mode at the shedding frequency, to a broader-band state in which energy is distributed among higher-order modes and broadband fluctuations. This reduction in single-frequency dominance may lower the propensity for lock-in when a flow-acoustic feedback pathway is present. An equivalent characteristic length derived from the shear-layer statistics accounts for the combined effects of the side-branch and lip fillet-chamfer diameters. The resulting Strouhal numbers range from 0.9 to 1.3, supporting a common convective time-scale interpretation of the dominant shedding frequency across the investigated geometries.

Nuclear Engineering and DesignVol. 459
China General Nuclear Power Corporation (China) (CN), State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University (CN)
Openalex Percentile: Top 17%
Fluid Dynamics and Vibration Analysis
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