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The Effectiveness of Hydrogen Water Chemistry on Corrosion Mitigation in an Advanced Boiling Water Reactor

机译:氢水化学对缓和沸水反应堆缓蚀的作用

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摘要

For further improvements on thermal efficiency and operation safety, reactor internal pumps, instead of conventional recirculation systems, are adopted in an advanced boiling water reactor (ABWR). With the novel design of internal circulation, the traveling path and pattern of the recirculated liquid coolant in an ABWR is actually different from that of the coolant in a conventional boiling water reactor. To ensure operation safety, optimization of the coolant chemistry in the primary coolant circuit (PCC) of a nuclear reactor is essential no matter what type or generation the reactor belongs to. For a better understanding of the water chemistry in an ABWR, such as the one being constructed in the northern part of Taiwan, and for safer operation of this ABWR, in this study we conducted a proactive, thorough water chemistry analysis prior to the completion of this reactor. A well-developed computer code was used to investigate the effectiveness of hydrogen water chemistry (HWC) on the redox species concentrations and electrochemical corrosion potential (ECP) behavior of components in the PCC of the Lungmen ABWR in Taiwan. Our analyses indicated that the effective oxidant concentrations at the top of the downcomer location would be expected to be > 100 ppb at 0.5 ppm [H_2]_(fw) at the original rated power. While an effective ECP reduction at 0.4 ppm [H_2]_(fw) was observed at the downcomer outlet, a 2.0 ppm [H_2]_(fw) was not enough to reduce the ECP below the E_(crit) at the upper plenum outlet. In summary, the effectiveness of HWC in the PCC of an ABWR is expected to vary from location to location and eventually from plant to plant due to different degrees of radiolysis and physical dimensions in different ABWRs.
机译:为了进一步提高热效率和运行安全性,高级沸水反应堆(ABWR)中采用了反应堆内部泵,而不是常规的再循环系统。通过内部循环的新颖设计,ABWR中再循环液体冷却剂的行进路径和模式实际上与常规沸水反应堆中的冷却剂不同。为了确保运行安全,无论反应堆属于哪种类型或世代,核反应堆主冷却剂回路(PCC)中冷却剂化学的优化都是必不可少的。为了更好地了解ABWR中的水化学,例如在台湾北部建造的ABWR,为了使该ABWR更安全地运行,在本研究中,我们在完成ABWR之前进行了积极,彻底的水化学分析这个反应堆使用完善的计算机代码来研究氢水化学(HWC)对台湾龙门ABWR PCC中组分的氧化还原物质浓度和电化学腐蚀电位(ECP)行为的有效性。我们的分析表明,在原始额定功率下,降液管位置顶部的有效氧化剂浓度在0.5 ppm [H_2] _(fw)处预计为> 100 ppb。尽管在降液管出口处观察到有效的ECP降低为0.4 ppm [H_2] _(fw),但2.0 ppm [H_2] _(fw)不足以将ECP降低到上充气室出口的E_(crit)以下。 。总而言之,由于不同ABWR中不同程度的辐射分解和物理尺寸,预计ABWR PCC中HWC的效果因地点而异,最终因工厂而异。

著录项

  • 来源
    《Nuclear science and engineering》 |2015年第3期|335-340|共6页
  • 作者

    Mei-Ya Wang; Tsung-Kuang Yeh;

  • 作者单位

    National Tsing Hua University, Nuclear Science and Technology Development Center 101, Sec. 2, Kuangfu Road, Hsinchu, Taiwan;

    National Tsing Hua University, Institute of Nuclear Engineering and Science 101, Sec. 2, Kuangfu Road, Hsinchu, Taiwan;

  • 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

  • 入库时间 2022-08-18 00:42:45

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