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首页> 外文期刊>Nuclear Engineering and Design >On-line monitoring system development for single-phase flow accelerated corrosion
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On-line monitoring system development for single-phase flow accelerated corrosion

机译:单相流加速腐蚀在线监测系统开发

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Aged nuclear piping has been reported to undergo corrosion-induced accelerated failures, often without giving signatures to current inspection campaigns. Therefore, we need diverse sensors which can cover a wide area in an on-line application. We suggest an integrated approach to monitor the flow accelerated corrosion (FAC) susceptible piping. Since FAC is a combined phenomenon, we need to monitor as many parameters as possible and that cover wide area, since we do not know where the FAC occurs. For this purpose, we introduce the wearing rate model which focuses on the electrochemical parameters. Using this model, we can predict the wearing rate and then compare testing results. Through analysis we identified feasibility and then developed electrochemical sensors for high temperature application; we also introduced a mechanical monitoring system which is still under development. To support the validation of the monitored results, we adopted high temperature ultrasonic transducer (UT), which shows good resolution in the testing environment. As such, all the monitored results can be compared in terms of thickness. Our validation tests demonstrated the feasibility of sensors. To support direct thickness measurement for a wide-area, the direct current potential drop (DCPD) method will be researched to integrate into the developed framework.
机译:据报道,老化的核管道经历了腐蚀引起的加速失效,通常没有给当前的检查活动签名。因此,我们需要可以在在线应用中覆盖广泛区域的各种传感器。我们建议采用一种集成方法来监控易受腐蚀的流动管道(FAC)。由于FAC是一种综合现象,因此我们需要监视尽可能多的参数,这些参数应覆盖广泛的区域,因为我们不知道FAC发生在哪里。为此,我们引入了磨损速率模型,该模型侧重于电化学参数。使用此模型,我们可以预测磨损率,然后比较测试结果。通过分析,我们确定了可行性,然后开发了用于高温应用的电化学传感器。我们还推出了仍在开发中的机械监控系统。为了支持对监测结果的验证,我们采用了高温超声传感器(UT),该传感器在测试环境中显示出良好的分辨率。这样,可以将所有监视结果的厚度进行比较。我们的验证测试证明了传感器的可行性。为了支持大范围的直接厚度测量,将研究直流电势降(DCPD)方法以将其集成到已开发的框架中。

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