• CN:11-2187/TH
  • ISSN:0577-6686

机械工程学报 ›› 2024, Vol. 60 ›› Issue (14): 378-386.doi: 10.3901/JME.2024.14.378

• 交叉与前沿 • 上一篇    下一篇

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悬浮叶轮对旋涡泵内流特性及轴向力的影响研究

李倩倩1,2, 汤德利1, 葛检1, 陆怡1, 别锋锋1, 朱晓渠3   

  1. 1. 常州大学机械与轨道交通学院 常州 213164;
    2. 江苏省能源动力高端装备工程研究中心 常州 213164;
    3. 中石化宁波工程有限公司 宁波 315100
  • 收稿日期:2023-07-17 修回日期:2024-04-27 出版日期:2024-07-20 发布日期:2024-08-29
  • 作者简介:李倩倩(通信作者),女,1993年出生,博士,讲师。主要研究方向为流体机械的优化设计、压力脉动分析及减振降噪。E-mail:liqianqian_zju@foxmail.com
  • 基金资助:
    国家自然科学基金资助项目(52206041)。

Effect of Floating Impeller on the Inner Flow Characteristics and Axial Force in Regenerative Flow Pump

LI Qianqian1,2, TANG Deli1, GE Jian1, LU Yi1, BIE Fengfeng1, ZHU Xiaoqu3   

  1. 1. College of Mechanical Engineering, Changzhou University, Changzhou 213164;
    2. Jiangsu Province Engineering Research Center of High-Level Energy and Power Equipment, Changzhou University, Changzhou 213164;
    3. Sinopec Ningbo Engineering Co., Ltd., Ningbo 315100
  • Received:2023-07-17 Revised:2024-04-27 Online:2024-07-20 Published:2024-08-29

摘要: 设计三种进出口轴向间隙厚度不同的旋涡泵模型(C1J3、C1J1和C3J1),采用SST k-ω湍流模型对悬浮叶轮式旋涡泵内部流动进行数值模拟,计算叶轮悬浮在不同轴向位置时旋涡泵的外特性和全三维流场,探讨旋涡泵各部件的压力分布特点和质量交换机理,并进一步揭示悬浮叶轮所受轴向力的变化规律。结果表明,三个模型中泵壳流道和轴向间隙内的压力增长模式一致,均从流动发展区逐渐过渡到流动发展加速区再进入阻隔面区域。流动发展区内流体流动尚不稳定,发展加速区内叶轮和泵壳流道内流体的交换流动稳定而充分,而阻隔面区内压力剧烈变化以阻止液体泄漏。与轴向间隙厚度相同的泵模型C1J1相比,模型C1J3和C3J1的扬程和水力效率较低,且受叶轮偏离影响,叶轮和泵壳流道内流体的能量交换强度相对较弱,各部件内监测点的压力增速也较为缓慢。此外,叶轮所受轴向力与叶轮悬浮位置有关,且有偏向轴向间隙厚度较大方向的 趋势。

关键词: 悬浮叶轮式旋涡泵, 内流特性, 能量交换, 轴向力, 间隙厚度

Abstract: Three regenerative flow pumps with floating impeller(RFP), different in the thickness of inlet/outlet axial clearance, are designed. The SST k-ω turbulence model is employed in the numerical simulation of RFP’s inner flow characteristics. The external characteristics and full three-dimensional flow field of RFP with the impeller floating in different axial positions are calculated. The pressure distribution characteristics in each component and mass exchange mechanism in RFP are discussed, and the varying rules of the axial force exerting on the floating impeller is further revealed. The results show that the growth pattern of pressure in pump channel and axial clearance are consistent in three pump models, where the fluid flows from the flow development region to flow acceleration region and then enters into the stripper region. The flow in development region is not stable, but in acceleration region, the exchange flow between the impeller and channel is stable and sufficient. Besides, in stripper region, the flow pressure changes rapidly to prevent the flow leakage. Compared with the pump model C1J1 taking equal clearance thickness, the head and hydraulic efficiency of pump models C1J3 and C3J1 are relatively lower. Under the effect of the impeller deviation, the intensity of energy exchange between the impeller and channel is weaker, and the pressure growth rate on the monitoring points of each component is comparatively slow. Additionally, the axial force of impeller is related to the impeller’s floating position, and the impeller tends to deviate to the direction with larger thickness of axial clearance.

Key words: regenerative flow pump with floating impeller, inner flow characteristics, energy exchange, axial force, clearance thickness

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