2D-URANS Study on the Impact of Relative Diameter on the Flow and Drag Characteristics of Circular Cylinder Arrays

Author:

Liu Mengyang12,Wang Yisen34,Gong Yiqing5ORCID,Wang Shuxia3

Affiliation:

1. College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing 210098, China

2. Key Laboratory of Hydrologic-Cycle and Hydrodynamic-System of Ministry of Water Resources, Hohai University, Nanjing 210098, China

3. State Key Laboratory of Water Resources Engineering and Management, Wuhan University, Wuhan 430072, China

4. River Research Department, Changjiang River Scientific Research Institute, Wuhan 430010, China

5. Institute of Water Science and Technology, Hohai University, Nanjing 210098, China

Abstract

The flow structure around limited-size vegetation patches is crucial for understanding sediment transport and vegetation succession trends. While the influence of vegetation density has been extensively explored, the impact of the relative diameter of vegetation stems remains relatively unclear. After validating the reliability of the numerical model with experimental data, this study conducted 2D-URANS simulations (SST k-ω) to investigate the impact of varying relative diameters d/D under different vegetation densities λ on the hydrodynamic characteristics and drag force of vegetation patches. The results show that increasing d/D and decreasing λ are equivalent, both contributing to increased spacing between cylinder elements, allowing for the formation of element-scale Kármán vortices. Compared to vegetation density λ, the non-dimensional frontal area aD is a better predictor for the presence of array-scale Kármán vortex streets. Within the parameter range covered in this study, array-scale Kármán vortex streets appear when aD ≥ 1.4, which will significantly alter sediment transport patterns. For the same vegetation density, increasing the relative diameter d/D leads to a decrease in the array drag coefficient C¯D and an increase in the average element drag coefficient C¯d. When parameterizing vegetation resistance using aD, all data points collapse onto a single curve, following the relationships C¯D=0.34lnaD+0.78 and C¯d=−0.42lnaD+0.82.

Funder

National Natural Science Foundation of China

Postdoctoral Innovation Talents Support Program

China Postdoctoral Science Foundation

Jiangsu Funding Program for Excellent Postdoctoral Talent

Publisher

MDPI AG

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