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Engineering nonlinearity characteristic compensation for commercial steam turbine control valve using linked MARS code and Matlab Simulink

机译:基于MARS代码和Matlab Simulink的商用汽轮机控制阀工程非线性特性补偿。

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摘要

Steam turbine control valves play a pivotal role in regulating the output power of the turbine in a commercial power plant. They thus have to be operated linearly to be run by an automatic control system. Unfortunately, the control valve has inherently nonlinearity characteristics. The flow increases more significantly near the closed end than near the open end of the stem travel given the valve position signal. The steam flow should nonetheless be proportional to the final desired quantity, output power, of the turbine to obtain a linear operation. This paper presents the valve engineering linked analysis (VELA) for nonlinearity characteristic compensation of the steam turbine control valve by using a linked two existing commercial software. The Multi-dimensional Analysis of Reactor Safety (MARS) code and Mat-lab Simulink have been selected for VELA to develop a steady state and transient analyzer of Ulchin Units 3&4 powered by the Optimized Power Reactor l000MWe (OPR1000). MARS is capable of modeling a wide range of systems from single pipes to full nuclear power plants. As one of standard nuclear power plant thermal hydraulic analysis software tools, MARS simulates the primary and secondary sides of the nuclear power plant. To simulate the electric power flow part, Matlab Simulink is chosen as the standard analysis software. Matlab Simulink having an interactive environment to model analyzes and simulates a wide variety of engineering dynamic systems including multimachine power systems. Based on the MARS code result, Matlab Simulink analyzes the power flow of the generator connected to an infinite bus for representing the grid connection. Three different scenarios are analyzed in VELA by considering the control valves opening sequence mechanism and the change rate of output power reference.
机译:蒸汽涡轮机控制阀在调节商业电厂中涡轮机的输出功率方面起着关键作用。因此,它们必须线性运行才能由自动控制系统运行。不幸的是,控制阀具有固有的非线性特性。给定阀位置信号时,阀杆行程的封闭端附近的流量比开口端附近的流量显着增加。尽管如此,蒸汽流量应与涡轮机的最终期望量(输出功率)成比例,以获得线性运行。本文介绍了通过使用两个现有的链接商业软件对汽轮机控制阀进行非线性特性补偿的阀工程链接分析(VELA)。 VELA已选择“反应堆安全性的多维分析(MARS)代码和Mat-lab Simulink”,以开发由最佳功率反应堆1000MWe(OPR1000)驱动的Ulchin 3号和4号机组的稳态和瞬态分析仪。 MARS能够对从单管道到完整核电厂的各种系统进行建模。作为标准的核电站热工水力分析软件工具之一,MARS可以模拟核电站的一次和二次侧。为了模拟电力流动部分,选择了Matlab Simulink作为标准分析软件。 Matlab Simulink具有交互式环境,可以对分析和模拟多种工程动态系统进行建模和仿真,包括多机动力系统。根据MARS代码结果,Matlab Simulink分析连接到无限总线的发电机的功率流,以表示电网连接。通过考虑控制阀打开顺序机制和输出功率参考的变化率,在VELA中分析了三种不同的情况。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2012年第2期|p.360-370|共11页
  • 作者

    B. Halimi; Kune Y. Suh;

  • 作者单位

    Seoul National University,Republic of Korea;

    Seoul National University,Republic of Korea PHILOSOPHIA Inc., 599 Gwanak Ro, Cwanak Gu, Seoul 151-744, Republic of Korea Department of Nuclear Engineering, Seoul National University Rm. 32-215,599 Gwanak Ro, Gwanak Gu, Seoul, 151-744, Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    e: error; G: transfer function; J: transient error; j: imaginary units; k: constant; et al;

    机译:e:错误;G:传递函数;J:瞬态误差;j:虚数单位;k:常数;等;

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