Evolution mechanism of internal flow in the hump region and hump optimization of axial-flow reactor coolant pump

被引:1
作者
Chen, Huazheng [1 ]
Liu, Xiangsong [2 ]
Lu, Yonggang [1 ]
Fu, Qiang [1 ]
Zhu, Rongsheng [1 ]
Li, Huairui [1 ]
Su, Haonan [1 ]
机构
[1] Jiangsu Univ, Natl Res Ctr Pumps, Zhenjiang 212013, Jiangsu, Peoples R China
[2] Harbin Elect Power Equipment Co Ltd, Harbin 150060, Peoples R China
基金
中国国家自然科学基金;
关键词
Reactor coolant pump; Internal flow; Hump region; Hump control; KAPLAN DRAFT TUBE; PRESSURE PULSATION; RENEWABLE ENERGY; ECONOMIC-GROWTH; NUCLEAR-ENERGY; TURBINE; FLUCTUATIONS; SIMULATION; DIFFUSER;
D O I
10.1016/j.energy.2024.133460
中图分类号
O414.1 [热力学];
学科分类号
摘要
The Nuclear Reactor Coolant Pump (RCP) serves as a pivotal equipment in nuclear power plants, and its operational reliability is directly linked to the overall safety of the plant. When operating in the hump region, axialflow reactor coolant pumps inevitably experience significant vibration and noise. Therefore, it is necessary to study the internal flow characteristics in the hump region to achieve effective control and increase the hump margin, keeping it away from the normal operating region. This study conducted analyses of pressure pulsation characteristics under various flow rates through experimentation. Additionally, numerical simulations were employed to scrutinize the internal flow of the pump under corresponding flow rates. Research has found that the disturbance of intermediate frequency signals is the main reason for the increase in pressure fluctuations in the hump region, rooted in the annular flow at the impeller inlet and vortex phenomena in the flow channel. Subsequently, the performance of the hump region was improved by optimizing the design of the vane inlet attack angle. The conclusions drawn from this study provide insights and a foundation for the optimal design of reactor coolant pumps.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Study on the flow and pressure pulsation characteristics in the hump region of pump- turbine based on C-shaped blade design
    Shi, Guangtai
    Wang, Ning
    Liu, Huanhuan
    Wen, Haigang
    Huang, Zongliu
    Wu, Jiliang
    JOURNAL OF ENERGY STORAGE, 2025, 119
  • [22] Effects of an Inlet Vortex on the Performance of an Axial-Flow Pump
    Zhang, Wenpeng
    Tang, Fangping
    Shi, Lijian
    Hu, Qiujin
    Zhou, Ying
    ENERGIES, 2020, 13 (11)
  • [23] The influence of axial-flow fan trailing edge structure on internal flow
    Zhang, Weijie
    Yuan, Jianping
    Zhou, Banglun
    Li, Hao
    Yuan, Ye
    ADVANCES IN MECHANICAL ENGINEERING, 2018, 10 (11)
  • [24] Pressure pulsation of a reactor coolant pump under low flow conditions
    Long, Yun, 1600, Chinese Vibration Engineering Society (33): : 143 - 149
  • [25] Spatial-temporal evolution of tip leakage cavitation with double-hump in a mixed flow pump with tip clearance
    Han, Yadong
    Tan, Lei
    PHYSICS OF FLUIDS, 2023, 35 (04)
  • [26] Optimization of blade high-pressure edge to reduce pressure fluctuations in pump-turbine hump region
    Li, Deyou
    Qin, Yonglin
    Wang, Jianpeng
    Zhu, Yutong
    Wang, Hongjie
    Wei, Xianzhu
    RENEWABLE ENERGY, 2022, 181 : 24 - 38
  • [27] Research on the transient flow and vortex structure evolution mechanism of reactor coolant pump under non-uniform inflow
    Yun, Long
    Wu, Zhenguo
    Zhang, Mingyu
    Yuan, Xu
    ANNALS OF NUCLEAR ENERGY, 2025, 217
  • [28] Study on internal flow characteristics of reactor coolant pump under non-uniform inflow
    Long, Yun
    Xu, Yuan
    Guo, Xi'an
    Zhang, Mingyu
    PROGRESS IN NUCLEAR ENERGY, 2025, 180
  • [29] Study on the transient evolution law of internal flow field and dynamic stress of reactor coolant pump under rotor seizure accident
    Wang, Xiuli
    Lu, Yonggang
    Zhu, Rongsheng
    Fu, Qiang
    Chen, Yiming
    Zhong, Weiyuan
    ANNALS OF NUCLEAR ENERGY, 2019, 133 : 35 - 45
  • [30] Energy performance and flow characteristics of a slanted axial-flow pump under cavitation conditions
    Fei, Zhaodan
    Zhang, Rui
    Xu, Hui
    Feng, Jiangang
    Mu, Tong
    Chen, Yaohui
    PHYSICS OF FLUIDS, 2022, 34 (03)