MOC-CFD coupled model of load rejection in hydropower station

被引:6
|
作者
Mandair, S. [1 ]
Morissette, J. F. [2 ]
Magnan, R. [2 ]
Karney, B. [1 ]
机构
[1] Univ Toronto, Dept Civil Engn, Toronto, ON M5S 1A4, Canada
[2] Inst Rech Hydro Quebec IREQ, Varennes, PQ J3X 1S1, Canada
关键词
TRANSIENTS;
D O I
10.1088/1755-1315/774/1/012021
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
A modelling study investigates the consequences of transient flow conditions due to a turbine load rejection. The case study considers a large hydropower station with a long penstock. A three-dimensional (3D) Computational Fluid Dynamics (CFD) model is used to represent the spiral casing, guide vanes, runner, and draft tube. A one-dimensional (1D) Method of Characteristics (MOC) solver simulates water hammer in the penstock. The two models are coupled, to simulate a full load rejection. The results are compared with reference to field measurements and a pure 1D solver, combining the penstock and a turbine model based on machine and conveyance characteristics. A comparison of the high level data (head, flow, torque and rotational speed) reveals the two models reproduce the field data reasonably well. The exception being rotational speed toward the zero torque region, where both models underestimate speed. The model predicts high cycle pressure fluctuations on the turbine blade, which would produce serious mechanical loading. The source of the fluctuations is determined to be unstable vortices within the runner.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Dynamic analysis of the pump system based on MOC-CFD coupled method
    Yang, Shuai
    Chen, Xin
    Wu, Dazhuan
    Yan, Peng
    ANNALS OF NUCLEAR ENERGY, 2015, 78 : 60 - 69
  • [2] MOC-CFD Coupled Approach for the Analysis of the Fluid Dynamic Interaction between Water Hammer and Pump
    Wu, Dazhuan
    Yang, Shuai
    Wu, Peng
    Wang, Leqin
    JOURNAL OF HYDRAULIC ENGINEERING, 2015, 141 (06)
  • [3] The research of Unit Daily Load Process Model of hydropower station
    Gou, L.
    Chen, S. L.
    ADVANCED ENGINEERING AND TECHNOLOGY III, 2017, : 123 - 128
  • [4] Surge wave characteristics for hydropower station with upstream series double surge tanks in load rejection transient
    Guo, Wencheng
    Yang, Jiandong
    Teng, Yi
    RENEWABLE ENERGY, 2017, 108 : 488 - 501
  • [5] Surge superposition following successive load rejection in hydropower stations
    College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing
    210098, China
    Shuili Xuebao, 11 (1321-1328):
  • [6] Edge Computing in Smart Hydropower Station: Sinusoidal Noise Rejection for PD Monitoring
    Luo, Yuanlin
    Wu, Yuechao
    Zheng, Bo
    Lu, Jiong
    PROCEEDINGS OF 2020 IEEE 4TH INFORMATION TECHNOLOGY, NETWORKING, ELECTRONIC AND AUTOMATION CONTROL CONFERENCE (ITNEC 2020), 2020, : 2668 - 2672
  • [7] A model establishment and numerical simulation of dynamic coupled hydraulic–mechanical–electric–structural system for hydropower station
    Qianqian Wu
    Leike Zhang
    Zhenyue Ma
    Nonlinear Dynamics, 2017, 87 : 459 - 474
  • [8] A many-objective optimization strategy for unified optimal operation of pumped storage hydropower station under multiple load rejection conditions
    Liu, Baonan
    Zhou, Jianzhong
    Guo, Wencheng
    Li, Mengyao
    ENERGY FOR SUSTAINABLE DEVELOPMENT, 2023, 74 : 34 - 49
  • [9] Research on optimal load allocation in hydropower Station based on DQN algorithm
    Tan, Qiaofeng
    Song, Jiawei
    Wen, Xin
    Zeng, Yuxuan
    Wang, Hao
    Shuili Xuebao/Journal of Hydraulic Engineering, 2024, 55 (11): : 1345 - 1355
  • [10] Simulation analysis of inrush current in no load closing of transformer in Hydropower Station
    Ren Hongtao
    ENERGY REPORTS, 2021, 7 : 1175 - 1181