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DETERMINATION PROCEDURES OF HIGH RISK ZONES FOR LOCAL WALL THINNING DUE TO FLOW-ACCELERATED CORROSION

机译:流动加速腐蚀引起的局部薄壁高风险区的测定方法

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摘要

A modified six-step evaluation procedure has been proposed to evaluate local wall thinning due to flow-accelerated corrosion (FAC). In step 1, the one-dimensional (1-D) distribution of flow turbulence and the temperature along pipes in cooling systems were analyzed with a 1-D system simulation code to obtain approximate mass transfer coefficients at structure surfaces, prior to using a three-dimensional (3-D) computational fluid dynamics (CFD) code for precise flow turbulence analysis of the major parts. In step 2, corrosive conditions were calculated with a N_2H_4-O_2 reaction analysis code. In step 3, high FAC risk, zones were determined for further evaluationfor wall thinning rates, based on five parameters: temperature, pH, oxygen concentration, mass transfer coefficient, and chromium content. Then, in step 4, the 3-D CFD code was used to calculate precise mass transfer coefficients at the high FAC risk zones. In step 5, the wall thinning rates were calculated using a coupled model of electrochemical analysis and oxide layer growth analysis by applying the corrosive conditions and the mass transfer coefficients. Finally, in step 6, the residual lifetime of the pipes and the applicability of countermeasures against FAC were evaluated. This paper introduces procedures for determining major FAC parameters and evaluation procedures for high FAC risk zones by synthesizing the parameters in step 3. The procedures for determination of high FAC risk zones in a pressurized water reactor secondary cooling system are also demonstrated.
机译:已经提出了一种改进的六步评估程序来评估由于流动加速腐蚀(FAC)而引起的局部壁薄。在步骤1中,使用1-D系统模拟代码对一维(1-D)湍流分布和冷却系统中沿管道的温度进行分析,以获取结构表面的近似传质系数,然后使用3 (3-D)计算流体力学(CFD)代码,用于对主要零件进行精确的湍流分析。在步骤2中,使用N_2H_4-O_2反应分析代码计算腐蚀条件。在第3步中,存在高FAC风险的区域基于温度,pH,氧气浓度,传质系数和铬含量这五个参数确定了进一步评估壁薄率的区域。然后,在步骤4中,将3-D CFD代码用于在高FAC风险区计算精确的传质系数。在步骤5中,通过应用腐蚀条件和传质系数,使用电化学分析和氧化物层生长分析的耦合模型来计算壁变薄率。最后,在步骤6中,评估了管道的剩余寿命以及针对FAC的对策的适用性。本文介绍了通过在步骤3中综合参数来确定主要FAC参数的程序和评估高FAC风险区的程序。还介绍了在压水堆二次冷却系统中确定高FAC风险区的程序。

著录项

  • 来源
    《Nuclear Technology》 |2012年第1期|p.65-77|共13页
  • 作者单位

    Institute of Applied Energy, 1-14-2, Nishi-Shimbashi, Minato-ku, Tokyo 105-0001, Japan;

    Institute of Applied Energy, 1-14-2, Nishi-Shimbashi, Minato-ku, Tokyo 105-0001, Japan;

    Institute of Applied Energy, 1-14-2, Nishi-Shimbashi, Minato-ku, Tokyo 105-0001, Japan;

    Institute of Applied Energy, 1-14-2, Nishi-Shimbashi, Minato-ku, Tokyo 105-0001, Japan;

    Institute of Applied Energy, 1-14-2, Nishi-Shimbashi, Minato-ku, Tokyo 105-0001, Japan;

    University of Tokyo, 7-3-1, Hongo, Bunkyo-ku, Tokyo 113-8656, Japan;

    University of New Brunswick, P.O. Box 4400, Fredericton, NB E3B 5A3, Canada;

  • 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

    flow-accelerated; corrosion; wall thinning; mass; transfer coefficient;

    机译:流动加速腐蚀;壁变薄质量转移系数;

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