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DETECTION OF SIMULATED STEAM LEAK INTO SODIUM IN STEAM GENERATOR OF PFBR BY ARGON INJECTION USING SIGNAL ANALYSIS TECHNIQUES

机译:信号注入技术通过氩气注入法检测PFBR蒸汽发生器中模拟蒸汽渗入钠

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摘要

The Prototype Fast Breeder Reactor (PFBR) is pool-type, sodium-cooled reactor. PFBR has eight steam generators (SGs) in its secondary circuit. The availability of SG units in the secondary circuit is of critical importance, as this determines the entire plant availability. Constant exposure to high temperature and high pressure may result in water or steam leaks in the tubes of SGs by which sodium and water reaction will take place. The growth in a leak may lead to tube rupture and large pressure increase in the secondary circuit. So, an important requirement from the viewpoints of safety and economics is to detect leaks at the incipient stage. Hydrogen detection methods, which are currently used to detect the initiation of steam leaks to sodium, involve transport delays, as the hydrogen evolved during the leak has to reach the sensor location. It is possible to detect a leak of 1 g/s within 1 s by acoustic leak detection. Another advantage is that it is possible to locate the position of a leak by installing several acoustic sensors on a SG. Experiments to develop a suitable signal-processing technique were carried out in the Steam Generator Test Facility (SGTF); argon was injected into sodium at argon pressure of 2 to 10 MPa through a 0.5-mm orifice. Signal-processing techniques, an autoregressive noise variance technique, and a wavelet detailed coefficient variance technique were studied and compared for their sensitivity to detect a steam/water leak. The acoustic technique employing wavelet decomposition is found to be promising for detecting a leak at the incipient stage. This paper discusses the details of the experiments carried out and the instrumentation and signal analysis techniques used for leak detection in SGs.
机译:原型快速繁殖反应堆(PFBR)是池式钠冷却反应堆。 PFBR的二次回路中有八个蒸汽发生器(SG)。二次回路中SG单元的可用性至关重要,因为这决定了整个工厂的可用性。不断暴露于高温和高压下可能会导致SGs管中出现水或蒸汽泄漏,从而使钠和水发生反应。泄漏的增加可能会导致管破裂,并在次级回路中造成较大的压力增加。因此,从安全和经济的角度来看,一项重要的要求是在初期就检测泄漏。氢气检测方法目前用于检测蒸汽向钠的泄漏,这涉及运输延迟,因为泄漏期间放出的氢气必须到达传感器位置。通过声音泄漏检测可以在1 s内检测到1 g / s的泄漏。另一个优点是可以通过在SG上安装几个声学传感器来定位泄漏的位置。在蒸汽发生器测试设施(SGTF)中进行了开发合适信号处理技术的实验;将氩气通过0.5毫米的孔口以2至10 MPa的氩气压力注入钠中。研究了信号处理技术,自回归噪声方差技术和小波详细系数方差技术,并比较了它们检测蒸汽/水泄漏的敏感性。发现采用小波分解的声学技术有望在初期检测泄漏。本文讨论了进行的实验的详细信息以及用于SGs泄漏检测的仪器和信号分析技术。

著录项

  • 来源
    《Nuclear Technology》 |2013年第3期|249-258|共10页
  • 作者单位

    Indira Gandhi Centre for Atomic Research, Vibration Diagnostic Division Fast Reactor Technology Group, Kalpakkam, Tamilnadu 603102 India;

    Indira Gandhi Centre for Atomic Research, Vibration Diagnostic Division Fast Reactor Technology Group, Kalpakkam, Tamilnadu 603102 India;

    Indira Gandhi Centre for Atomic Research, Vibration Diagnostic Division Fast Reactor Technology Group, Kalpakkam, Tamilnadu 603102 India;

    Indira Gandhi Centre for Atomic Research, Vibration Diagnostic Division Fast Reactor Technology Group, Kalpakkam, Tamilnadu 603102 India;

  • 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

    leak detection; autoregressive technique; wavelet transform;

    机译:泄漏检测;自回归技术小波变换;
  • 入库时间 2022-08-18 00:43:22

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