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HYDRIDE BEHAVIOR IN ZIRCALOY-4 DURING THERMOMECHANICAL CYCLING

机译:热机械循环期间锆石氢化物行为

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Hydrogen ingress into zirconium alloy fuel cladding during operation in nuclear reactors can degrade cladding performance, both during operation and under dry storage, due to formation of brittle hydrides. At temperature and under stress, hydrogen redistribution and reorientation can occur, reducing cladding resistance to failure. Thus, it is crucial to understand the kinetics of hydride dissolution and re-orientation under stress and at temperature. High-energy and micro-beam synchrotron diffraction are used to study the kinetics of hydride reorientation and hydride distribution near a crack tip in previously hydrided Zircaloy sheet. Reorientation of hydrides in bulk samples is studied in situ (at temperature and under applied tensile stress). In-situ transmission diffraction data provides unique strain and orientation information on the hydrides. Micro-beam diffraction has been performed on previously cracked compact tension specimens under load. Measurement of the hydride distribution and associated strains can be performed with the micro-beam to determine hydrogen response to an applied strain field.
机译:由于脆性氢化物的形成,氢气进入核反应堆的操作过程中的氧化锆合金燃料包覆可以降低覆盖性能,并且在干燥储存期间。在温度下,在应力下,可能发生氢再分布和重新定位,降低覆层耐损失。因此,了解氢化物溶解和在应力下的重新取向和温度下的重新取向至关重要。高能和微束同步衍射用于研究先前氢化锆铝板裂纹尖端附近氢化物重新定向和氢化物分布的动力学。原位研究了本体样品中氢化物的重新定位(在温度和施加的拉伸应力下)。原位传输衍射数据提供有关氢化物的独特应变和方向信息。已经在负载下的先前破裂的紧凑张力标本上进行微束衍射。可以用微束进行氢化物分布和相关菌株的测量以确定对施加的应变场的氢响应。

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