Study on vortex-induced vibration and heat transfer characteristics of rotating cylinders under oscillatory flow
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1.Key Laboratory of Low-grade Energy Utilization Technologies and Systems, Ministry Education, Chongqing University, Chongqing 400044, P. R. China;2.Sichuan Gas Turbine Establishment, Aero Engine Corporation of China, Mianyang Sichuan, 610500, P. R. China.

Clc Number:

TB126;TK124

Fund Project:

Supported by the Natural Science Foundation of Chongqing (CSTB2024NSCQ-MSX0463),and National Financially Stable Support Project of Sichuan Gas Turbine Establishment, Aero Engine Corporation of China.

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    Abstract:

    Considering the characteristics of deep ocean currents, this study numerically investigates the effects of reduced velocity (U*) and rotational speed (α) on the vortex-induced vibration(VIV) response and heat transfer performance of a circular cylinder subjected to oscillatory inflow. The results reveal multiple extrema in the peak amplitude ratios in both the streamwise (A*peaks,x) and transverse (A*peaks,y) directions. As α increases, the maximum A*peaks,x increases, while the corresponding U* decreases. Significant variations are observed in cylinder displacement and lift/drag coefficients with changes in α and U*. The time-averaged displacement in the x-direction increases with U*, whereas the average displacement in the y-direction and the lift coefficient both increase with α. The motion trajectory of the cylinder lacks a distinct pattern within the range of 0≤α≤1.0, but becomes circular at α =1.5. With increasing U*, the average Nusselt number increases, and the distribution of local Nusselt numbers gradually forms a circular pattern. As α increases, the vortex shedding transitions from a 2S pattern to a single-row configuration, with the wake stretching into a U-shaped structure. Temperature field analysis reveals weaker heat exchange at the front stagnation point, while heat transfer and local thermal efficiency at the rear stagnation point are significantly enhanced.

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杨国耀,孙悦,单智超,李祥,丁林.振荡流下旋转圆柱涡致振动与传热特性研究[J].重庆大学学报,2025,48(7):62~74

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History
  • Received:January 16,2025
  • Revised:
  • Adopted:
  • Online: July 19,2025
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