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Electrochemical Corrosion Potential Modeling in the Primary Heat Transport Circuit of the Chinshan Boiling Water Reactor under the Condition of. Hydrogen Water Chemistry with Noble Metal Coating

机译:条件下金山沸水反应器一次传热回路的电化学腐蚀电位建模。含贵金属涂层的氢水化学

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摘要

[[abstract]]The technique of noble metal treatment, such as noble metal coating (NMC) or noble metal chemical addition, accompanied by a low level hydrogen water chemistry, is being employed by a number of nuclear power plants around the world fur mitigating intergranular stress corrosion cracking in the vessel internals of their boiling water reactors (BWRs). A computer model DEMACE was expanded and employed to assess the effectiveness of NMC throughout the primary heat transport circuit (PHTC) of a BWR. The effectiveness of NMC was justified by the electrochemical corrosion potential (ECP) and crack growth rate (CGR) predictions. In calculating the ECP, enhancing factors for the exchange current densities of redox reactions available from recently published data, were employed. The Chinshan BWR was selected as a model reactor. According to the modeling results, it was found that the effectiveness of NMC in the PHTC of a BWR could vary from region to region at different feedwater hydrogen concentrations. For the selected BWR: NMC was predicted to be of little benefit when the feedwater hydrogen concentration reached 0.9 ppm or over. In particular, the NMC technique proved to be beneficial in reducing ECP and CGR along the PHTC even if the BWR was operated under normal water chemistry.
机译:[[摘要]]贵金属处理技术,例如贵金属涂层(NMC)或贵金属化学添加剂的添加,以及低水平的氢水化学处理,已被世界各地的许多核电厂采用沸水反应堆(BWR)容器内部的晶间应力腐蚀开裂。扩展了计算机模型DEMACE,并将其用于评估BWR整个主传热回路(PHTC)中NMC的有效性。 NMC的有效性通过电化学腐蚀电位(ECP)和裂纹扩展速率(CGR)预测得到了证明。在计算ECP时,采用了可从最近发表的数据中获得的氧化还原反应的交换电流密度的增强因子。金山BWR被选为模型反应堆。根据建模结果,发现在给水氢浓度不同的情况下,NWR在BWR的PHTC中的有效性可能因地区而异。对于所选的BWR:预测当给水氢浓度达到0.9 ppm或更高时,NMC几乎没有好处。特别是,即使BWR在正常的水化学条件下运行,NMC技术也被证明对减少沿PHTC的ECP和CGR有益。

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    Tsung-Kuang Yeh;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 [[iso]]en
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