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This study investigates the unsteady flow around a wall-mounted square cylinder (WMSC) with an aspect ratio of 7 at a Reynolds number of 12 000 using large eddy simulation with the wall-adapting local eddy-viscosity subgrid-scale model in OpenFOAM. To analyze dominant flow structures, spectral proper orthogonal decomposition (SPOD) is applied to 26 planes oriented in the x-, y-, and z-normal directions. The results reveal key shedding phenomena, including a primary vortex-shedding mode at a Strouhal number of ∼0.105 and a second-cell vortex shedding at St≈0.127. The second-cell vortex shedding is concentrated near the base and junction of the cylinder, with minimal influence from mid to tip regions. Additionally, a secondary tip vortex at St≈1.8 is identified in three dimensions, originating at the rooftop of leading edge and localized near the tip. To examine this high-frequency feature, both two-dimensional and three-dimensional SPOD analyses are performed. While two-dimensional SPOD captures localized high-frequency structures, full-domain three-dimensional SPOD shows these structures are often masked by more energetic low-frequency modes. However, restricting the three-dimensional SPOD domain to the tip region clearly distinguishes the secondary tip vortex from dominant wake shedding. These findings demonstrate multi-cell shedding patterns and distinct high-frequency vortical structures, challenging the assumption of a single dominant shedding mechanism behind WMSC. Identifying multiple coherent structures at different frequencies highlights the importance of spectral techniques in resolving turbulence interactions in finite cylinder wakes.
Maleki et al. (Tue,) studied this question.
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