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Acoustic Emission Characteristics of Thermal Fatigue Crack to Examine the Safety of Structural Components in NPPs

机译:热疲劳裂纹的声发射特性,用于检验核电厂中结构部件的安全性

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In the nuclear power plants, early detection of fatigue crack using non-destructive testing is the essential procedure due to the social importance of nuclear structure and the possibility of operating incidents. Usually, the damages in the nuclear facilities are caused by cyclic loadings due to the mechanical or thermal fatigue on the reactor coolant system. Thermal fatigue is the one of the life-limiting mechanisms in nuclear power plant conditions during operation and it can initiate and propagate cracks in various parts of reactor coolant system. In this study, stainless steel 304 pipe was used to fabricate the thermal fatigue crack, which is commonly used as parts of reactor coolant system in the nuclear power plants. An experimental apparatus was built to perform accelerated test to initiate the crack, and the experimental signals were continuously monitored by acoustic emission sensors. To fabricate thermal fatigue crack, the thermal cycle that comprised of 60 seconds heating and 30 seconds cooling was applied to identify and monitor the characteristic of thermal fatigue crack propagation. Through the data analyses, the characteristics of the signals to detect the crack initiation are investigated and the result shows different signal characteristic between the effective signals and noise signals. Once a crack initiating on the specimen, significantly high level of signal strength was occurred and continued to the end of experiment. The results provide preliminary information for the non-destructive technique to apply to the on-line monitoring system of the structure failure detection.
机译:在核电厂中,由于核结构的社会重要性和可能发生的事故,使用无损检测及早检测疲劳裂纹是必不可少的程序。通常,由于反应堆冷却剂系统上的机械或热疲劳,周期性载荷会导致核设施的损坏。热疲劳是核电厂运行期间限制寿命的机制之一,它可以在反应堆冷却剂系统的各个部分引发和传播裂纹。在这项研究中,使用304不锈钢管制造热疲劳裂纹,该裂纹通常用作核电站反应堆冷却剂系统的一部分。建立了用于加速裂纹萌生的实验装置,并通过声发射传感器连续监测实验信号。为了制造热疲劳裂纹,应用了由60秒加热和30秒冷却组成的热循环,以识别和监视热疲劳裂纹扩展的特性。通过数据分析,研究了裂纹产生的信号特征,结果表明有效信号和噪声信号之间的信号特性不同。一旦在样品上产生裂纹,就会出现明显高水平的信号强度,并持续到实验结束。研究结果为无损检测技术应用于结构故障在线监测系统提供了初步的信息。

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