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水力发电学报 ›› 2025, Vol. 44 ›› Issue (5): 22-32.doi: 10.11660/slfdxb.20250503

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叶片倾斜角度对圆盘泵性能及内部流场影响研究

  

  • 出版日期:2025-05-25 发布日期:2025-05-25

Study on influence of blade inclination angle on disc pump performance and internal flow field

  • Online:2025-05-25 Published:2025-05-25

摘要: 本文探讨了叶片倾斜角度θ对圆盘泵性能及其内部流场的影响,研究中建立了19种不同倾斜角度的圆盘泵叶轮模型,角度范围从-45° ~ 45°,采用数值模拟与试验验证相结合的方式进行研究。数值模拟结果表明,θ对扬程和效率影响明显,其中θ为正值时,泵的扬程和效率均优于θ为负值时,从拟合的扬程、效率曲线来看,θ在30°附近时,泵的性能达到最佳,θ = 30°时,扬程为22.37 m,效率达到37.54%。通过对比原模型(θ = 0°)与θ = 30°的模型泵的内部流场发现,θ = 30°的模型泵在前盖板有叶区和无叶区压力分布更加均匀,能量损失较小;且在后盖板有叶区的增压能力更强。湍动能与涡分布分析显示,倾斜叶片设计降低了流体内部的湍动能强度,有效减少了涡流和流动不稳定性,提升了泵的输送效率。叶轮内部流线分布说明,倾斜叶片的设计减小了叶片工作面局部冲角,从而改善局部流动状态,减小能量损失。

关键词: 叶片角度, 性能提升, 内部流场, 数值模拟, 湍动能, 涡分布

Abstract: This study investigates the influence of blade inclination angle θ on the performance and internal flow characteristics of a disc pump. Nineteen impeller models with blade angles ranging from -45° to 45° were developed, and a combined approach of numerical simulation and experimental validation was employed. Simulations reveal that θ significantly influences both pump head and efficiency, and the positive θ models have better performance than the negative ones. The fitted head and efficiency curves reveal the pump performance reaches its optimum at a θ of around 30°, with the head of 22.37 m and the efficiency of 37.5%. By comparing the internal flow fields between the original model and the optimized model of θ = 30°, we find the latter enjoys a more uniform pressure distribution on the front cover plate in both the blade and non-blade zones, resulting in lower energy loss. And, the pressure-boosting capability in the blade zone near the rear cover plate is stronger. Analysis on turbulence kinetic energy and vortex distribution further indicates that modification on the blade angle decreases turbulence kinetic energy in the flow, and effectively suppresses vortex formation and flow instability, thereby improving pump performances. Flow patterns in the impeller section shows that the design of inclined vanes reduces the local impact angle to the vane working surface, which brings about improvement on the local flow state and a considerable reduction of energy loss.

Key words: blade angle, performance improvement, internal flow field, numerical simulation, turbulence kinetic energy, vortex distribution

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