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压水堆除气运行中燃料棒破口尺寸预测诊断研究

叶耀新 付鹏涛

叶耀新, 付鹏涛. 压水堆除气运行中燃料棒破口尺寸预测诊断研究[J]. 核动力工程, 2024, 45(6): 220-225. doi: 10.13832/j.jnpe.2024.06.0220
引用本文: 叶耀新, 付鹏涛. 压水堆除气运行中燃料棒破口尺寸预测诊断研究[J]. 核动力工程, 2024, 45(6): 220-225. doi: 10.13832/j.jnpe.2024.06.0220
Ye Yaoxin, Fu Pengtao. Study on Prediction and Diagnosis of Fuel Rod Break Size during Degassing Operation of PWR[J]. Nuclear Power Engineering, 2024, 45(6): 220-225. doi: 10.13832/j.jnpe.2024.06.0220
Citation: Ye Yaoxin, Fu Pengtao. Study on Prediction and Diagnosis of Fuel Rod Break Size during Degassing Operation of PWR[J]. Nuclear Power Engineering, 2024, 45(6): 220-225. doi: 10.13832/j.jnpe.2024.06.0220

压水堆除气运行中燃料棒破口尺寸预测诊断研究

doi: 10.13832/j.jnpe.2024.06.0220
详细信息
    作者简介:

    叶耀新(1995—),男,工程师,现主要从事反应堆辐射与屏蔽方面的研究工作,E-mail: ye.yaoxin@qq.com

  • 中图分类号: TL32

Study on Prediction and Diagnosis of Fuel Rod Break Size during Degassing Operation of PWR

  • 摘要: 压水堆核电厂运行数据表明,机组实施大流量除气运行后,一回路冷却剂裂变产物比活度在短时间内发生剧烈的震荡,使得基于堆芯平均状态裂变释放产生比(R/B)的燃料破损预测方法存在预测偏差。本文基于压水堆核电厂除气系统参数和惰性气体释放机理,建立除气运行修正的惰性气体释放预测分析模型,给出了除气条件下的除气因子和惰性气体释放率的计算方法,优化了基于R/B的燃料棒破口尺寸传统预测方法。该除气运行修正预测方法在某压水堆核电厂中进行了应用与验证,预测得到的6种常见惰性气体核素比活度最大相对偏差为33.4%,其余均不超过20%;预测得到燃料棒破口尺寸为大破口,该结果与停堆后的检查结果相符。

     

  • 图  1  压水堆裂变产物释放示意图

    Figure  1.  Schematic Diagram of Fission Product Release in PWR

    图  2  压水堆除气过程示意图

    Figure  2.  Schematic Diagram of Degassing Process of PWR

    图  3  某压水堆一回路惰性气体变化趋势图

    Figure  3.  Trend of Inert Gas Change in Primary Circuit of a PWR

    图  4  除气运行的惰性气体计算值与实测值对比

    Figure  4.  Comparison between Calculated and Measured Values of Inert Gas in Degassing Operation

    图  5  2种R/B预测方法的对比

    Figure  5.  Comparison between Two R/B Predictions

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出版历程
  • 收稿日期:  2024-01-09
  • 修回日期:  2024-03-15
  • 刊出日期:  2024-12-17

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