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首页> 外文期刊>Corrosion >Electrochemical Corrosion Potential of Carbon Steel Feeder Pipes in a Canadian Deuterium Uranium Reactor Generating Station Under Return-to-Service Conditions
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Electrochemical Corrosion Potential of Carbon Steel Feeder Pipes in a Canadian Deuterium Uranium Reactor Generating Station Under Return-to-Service Conditions

机译:恢复使用条件下加拿大氘铀反应堆发电站中碳钢给水管的电化学腐蚀电位

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摘要

One of the principle factors affecting the stress corrosion cracking (SCC) of a susceptible metal is its corrosion potential. A number of instances of cracking on the outlet feeder pipes of the primary heat transport (PHT) system at the Point Lepreau Generating Station ([PLGS] Lepreau, NB, Canada), a heavy water reactor, have been observed and are likely associated with either SCC or hydrogen-enhanced creep cracking. The potential of the outlet feeder pipes was inferred from representative electrochemical corrosion potential probes, pre-filmed in the laboratory, and exposed to a PHT coolant during a maintenance outage and reactor restart. Laboratory tests of the probes were also conducted over the full range of plant operating temperatures to provide a reasonable estimate of return-to-service conditions. The laboratory results were generally in good agreement with the PLGS data under deoxygenated and oxygenated conditions for temperatures of less than 80° C. Neither the removal of dissolved oxygen at low temperatures at PLGS, after a maintenance outage, nor in the laboratory simulation was sufficient to reduce the potential of the carbon steel below the region of susceptibility to SCC. It was only with the increase in temperature toward normal operating conditions that the potential decreased to that expected for the typical reducing conditions of the PHT coolant. [PUBLICATION ABSTRACT]
机译:影响易受影响金属的应力腐蚀开裂(SCC)的主要因素之一是其腐蚀潜力。在重型水反应堆Point Lepreau发电站(加拿大,新罕布什尔州,Lepreau)的一次热传输(PHT)系统的出口给水管上出现了许多开裂的现象,并可能与SCC或氢增强的蠕变开裂。从代表性的电化学腐蚀电位探头推断出出口进料管的电位,该探头已在实验室预成膜,并在维护中断和反应堆重启期间暴露于PHT冷却剂中。还在整个工厂工作温度范围内对探针进行了实验室测试,以提供对恢复使用条件的合理估计。在低于80°C的温度下,在脱氧和氧化条件下,实验室结果通常与PLGS数据非常吻合。在维护中断后,在低温下在PLGS上除去低温下的溶解氧,以及在实验室模拟中都不够将碳钢的潜力降低到对SCC敏感的区域以下。只是随着温度朝着正常操作条件的升高,电势才下降到了PHT冷却剂典型还原条件下的预期电势。 [出版物摘要]

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  • 来源
    《Corrosion》 |2009年第1期|p.49-60|共12页
  • 作者

    A N Scott W R Mawhinney;

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    A.N. Scott[dagger]* and W.R. Mawhinney**Submitted for publication May 2008: in revised form, June 2008.[double dagger] Corresponding author. E-mail: scotta@unb.ca.* Centre for Nuclear Energy Research, 2 Garland Ct., University of New Brunswick, Fredericton, NB, Canada, E3B 6C2.** New Brunswick Power Nuclear, Point Lepreau Generating Station, Lepreau, NB, Canada E5J 2S6.(1) ASME International, Three Park Ave., New York. NY 10016-5990.(2) UNS numbers are Usted In Metals and Alloys in the Unified Numbering System, published by the Society of Automotive Engineers (SAE International) and cosponsored by ASTM International.;

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