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Acoustic Sensor for In-pile Fuel Rod Fission Gas Release Measurement

机译:用于内部燃料棒裂变气体释放测量的声学传感器

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Innovative in-pile instrumentation is crucial for advanced experimental programs in research reactors. In this field, we developed a specific acoustic sensor to improve the knowledge of fission gas release in Pressurized Water Reactor (PWR) fuel rods when irradiated in materials testing reactors. In order to perform experimental programs related to the study of the fission gas release kinetics, the CEA (French Nuclear Energy Commission) acquired the ability to equip a pre-irradiated PWR fuel rod with three sensors, allowing the simultaneous on-line measurements of the following parameters: fuel temperature with a centreline thermocouple type C, internal pressure with a specific counter-pressure sensor, fraction of fission gas released in the fuel rod with an innovative acoustic sensor. The third detector, which has been developed and patented by CEA, SCK-CEN (Belgian Nuclear Research Center) and IES (French research laboratory of Montpellier II University and French National Research Center), is the subject of this paper. This original acoustic sensor has been designed to measure the molar mass and pressure of the gas contained in the fuel rod plenum. For in-pile instrumentation, the fraction of fission gas, such as Krypton and Xenon, in Helium, can be deduced online from this measurement. The principle of this acoustical sensor is the following: a piezoelectric transducer generates acoustic waves in a cavity connected to the fuel rod plenum. The acoustic waves are propagated and reflected in this cavity and then detected by the transducer. The data processing of the signal gives the velocity of the acoustic waves and their amplitude, which can be related respectively to the molar mass and to the pressure of the gas. The piezoelectric material of this sensor has been qualified in nuclear conditions (gamma and neutron radiations). The complete sensor has also been specifically designed to be implemented in materials testing reactors conditions. For this purpose some technical points have been studied in details: fixing of the piezoelectric sample in a reliable way with a suitable signal transmission, size of the gas cavity to avoid any perturbation of the acoustic waves, miniaturization of the sensor because of narrow in-pile experimental devices, appropriate cables to transmit high frequency signal under nuclear conditions. Design and testing program of this innovative sensor will be discussed.
机译:创新的桩型仪器对于研究反应堆的高级实验计划至关重要。在该领域,我们开发了一种特定的声学传感器,以改善加压水反应器(PWR)燃料棒中的裂变气体释放的知识在材料测试反应器中辐照。为了执行与裂变气体释放动力学研究相关的实验计划,CEA(法国核能委员会)获得了用三个传感器装备预辐射的PWR燃料棒的能力,允许同时在线测量以下参数:燃料温度与中心线热电偶C型,内部压力采用特定的反压敏传感器,用创新的声学传感器在燃料棒中释放的裂变气体分数。由CEA,SCK-CEN(比利时核研究中心)和IES(Montpellier II大学和法国国家研究中心法国研究实验室)开发和专利的第三种探测器是本文的主题。该原始声学传感器旨在测量燃料杆增压室中所含气体的摩尔质量和压力。对于桩型仪器,可以在该测量中在线推断出裂变气体的裂变气体的分数,例如Krypton和氙气。该声学传感器的原理如下:压电换能器在连接到燃料杆增压室的空腔中产生声波。声波被传播并反射在该腔中,然后由换能器检测。信号的数据处理给出了声波的速度和它们的幅度,其可以分别与摩尔质量和气体的压力有关。该传感器的压电材料已在核条件(伽马和中子辐射)中有资格。完整传感器还专门设计用于在材料测试反应器条件下实现。为此目的,已经详细研究了一些技术要点:以可靠的方式固定压电样品,以合适的信号传输,气体的尺寸,以避免声波的任何扰动,由于狭义,传感器的小型化。桩实验装置,适当的电缆以在核条件下传输高频信号。将讨论该创新传感器的设计和测试程序。

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