Characteristic Model of Combined Governing Valve and Governing Stage and Optimization of Steam Distribution of Steam Turbine

被引:2
|
作者
Zhang H. [1 ]
Xu J. [1 ]
Sun Y. [2 ]
Huang X. [1 ]
Chen X. [1 ]
Huangfu Z. [1 ]
Zhou L. [1 ]
机构
[1] Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education, Southeast University, Nanjing
[2] Huadian EIectric Power Research Institute, Hangzhou
关键词
Governing stage; Governing valve; Optimization of steam distribution; The combination flow characteristics; Varying condition;
D O I
10.3901/JME.2019.18.165
中图分类号
学科分类号
摘要
For the nozzle steam turbine, the combined flow characteristics calculation model of governing valve and governing stage is established by calculation, and tested with open literature experimental data. The accurate flow of the governing valve can be calculated with the model by using the combination pressure ratio and the valve opening, which is convenient for engineering application. Method a calculation model for the off-design performance of a 300 MW steam turbine unit based on the combined valve model, and the valve distribution function is optimized, and the flow character of the sequential valve is obtained. Then the steam distribution optimization is analyzed by using the load and valve position. Analysis shows that the combined flow characteristics calculation model of governing valve and governing stage can reflect the characteristics of the valve accurately. According to the model, the flow characteristic is optimized, the reasonable overlap degree is obtained. The optimal slip pressure curve of the unit is obtained, which reduce the heat consumption during low-load operation of the unit and improves the flexibility and peak-regulating capacity of the unit and provides the theoretical basis for optimization test. © 2019 Journal of Mechanical Engineering.
引用
收藏
页码:165 / 172
页数:7
相关论文
共 23 条
  • [1] The analysis and forecast report of 2017-2018 national power supply and demand situation
  • [2] The 13th five-year plan for energy development of the people's republic of china, (2016)
  • [3] Kubik M.L., Coker P.J., Barlow J.F., Increasing thermal plant flexibility in a high renewables power system, Applied Energy, 154, pp. 102-111, (2015)
  • [4] Yong H.Y., Kune Y.S., Engineering analysis of mass flow rate for turbine system control and design, Nuclear Engineering and Design, 241, pp. 4061-4078, (2011)
  • [5] Halimi B., Kim S.H., Kune Y.S., Engineering of combined valve flow for power conversion system, Energy Conversion and Management, 65, pp. 448-455, (2013)
  • [6] Giorgio Z., Experimental and numerical investigation into the aerodynamics of a novel steam turbine valve and its field application, Journal of Engineering for Gas Turbines and Power, 136, pp. 1-11, (2014)
  • [7] Andrew G., Frawley P., Experimental parametric equation for the prediction of valve coefficient (C<sub>v</sub>) for choke valve trims, International Journal of Pressure Vessels and Piping, 88, 2-3, pp. 109-118, (2011)
  • [8] Zhang B., Fan Y., Gu Z., Et al., Flow characteristic test for large steam turbines, Power Equipment, 26, 2, pp. 73-76, (2012)
  • [9] Peter B., Philipp V., Balkowski I., Et al., A new emergency stop and control valves design: Part 1-experimental verification with scaled models, ASME Turbo Expo 2014: Turbine Technical Conference and Exposition, (2014)
  • [10] Liese E., Modeling of a steam turbine including partial arc admission for use in a process simulation software environment, ASME 2011 International Mechanical Engineering Congress and Exposition, pp. 429-437, (2014)