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水力发电学报 ›› 2023, Vol. 42 ›› Issue (1): 128-138.doi: 10.11660/slfdxb.20230113

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水扑翼枢轴位置优化及实验验证

  

  • 出版日期:2023-01-25 发布日期:2023-01-25

Optimization and experimental verification of pivot position of flapping hydrofoil

  • Online:2023-01-25 Published:2023-01-25

摘要: 为解决平原河网水动力不足的问题,利用复合谐波运动的仿生水翼在超低扬程工况下进行推水作业,并基于有限体积法(FVM)和重叠动网格技术,通过数值仿真与实验相结合的方法,确定了扑动水翼推水作业时的最佳枢轴位置。结果表明:扑动水翼尾迹流场结构呈现反卡门涡街状态,其尾迹涡街偏斜程度、前缘涡的强度以及每个时刻前缘涡的状态变化均受枢轴位置影响;当枢轴位置向水翼尾部移动时,推水效率先增后减,L = 0.2c时效率最佳,相较枢轴位于水翼前缘时,效率可提升2% ~ 5%;扑动水翼的水力特性曲线与传统水泵相似,其最大扬程小于1 m,且随着枢轴位置向水翼尾部移动,其最大扬程呈现减小的趋势,进一步满足了超低扬程工况需求。

关键词: 水扑翼, 数值分析, 重叠网格, 实验验证, 推水性能, 超低扬程

Abstract: To solve the problem of insufficient hydrodynamic force in plain river networks, a bionic flapping hydrofoil in compound harmonic motions is used to push water under ultra-low head operating conditions. Based on the finite volume method (FVM) and the overlapping moving grid technology, the optimal position of the hydrofoil pivot is determined by using numerical simulations and experimental tests. The result shows that an inverse Karman vortex street appears as the wake of the flapping hydrofoil, and the pivot position affects the deflection degree of the street, the strength of the leading edge vortex, and the time change in its instantaneous state. As the pivot moves towards the trailing edge, the water pushing efficiency rises first and then declines with an optimal value 2% - 5% higher at L = 0.2c than that of the pivot near the leading edge. The hydraulic characteristic curve of a flapping hydrofoil features similar to that of a traditional pump, and its maximum head is lower than 1 m. The maximum head gradually lowers as its pivot moves towards the trailing edge to meet the requirement of ultra-low head conditions.

Key words: flapping hydrofoil, numerical analysis, overlapping grid, experimental verification, water pushing performance, ultra-low head

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