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首页> 外文期刊>ACS Omega >Probing the Radial Chemistry of Getter Components in Light Water Reactors via Controlled Electrochemical Dissolution
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Probing the Radial Chemistry of Getter Components in Light Water Reactors via Controlled Electrochemical Dissolution

机译:电化学溶解探测冷水反应器中吸气组分的径向化学

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Getters are among the key functional components in the tritium-producing burnable absorber rods (TPBARs) of light water reactors (LWRs) and are used to capture the released tritium gas. They are nickel-plated zircaloy-4 tubes that, upon exposure to irradiation or tritium in the light water reactors, undergo alteration in structure, chemical composition, and chemistry. Understanding the radial tritium distribution is key to gaining insight into the evolution of new chemistry upon irradiation to predict getter performance. The holy grail is to develop a method akin to selectively peeling off the layers of an onion in an effort to get a radial map of elements and particularly tritium across the getter. Toward this goal, the overall aim of this work is to establish a correlative technique that can be used to determine radial tritium distribution across getters. To this end, this work specifically focuses on the validation of a correlative method for controlled radial dissolution of nickel-plated getters. Here, pristine getters as well as getters loaded with different mass ratios of hydrogen and deuterium are used as the nonradioactive surrogates of tritium, the idea being that the methodology can be readily extended to tritiated getter components. Here, the surface nickel layers as well as the bulk zirconium layers are sequentially dissolved in a controlled, uniform way using voltage-assisted electrochemical dissolution techniques. The dissolution is complemented by periodic elemental analysis of the electrolyte solution during and post dissolution.
机译:Getters是氚的可燃烧器杆(TPBAR)的主要功能部件中的光水反应器(LWRS),并用于捕获释放的氚气体。它们是镀镍锆铝合金-4管,其在暴露于光水反应器中的照射或氚时,经历结构,化学成分和化学的改变。了解径向三氚分布是在辐照时探讨新化学演变的关键,以预测吸气剂性能。圣杯是开发一种类似于选择性地剥离洋葱的层的方法,以便在吸气剂上获得元素和特别氚的径向图。对此目标来说,这项工作的整体目标是建立一种相关技术,可用于确定Getters的径向氚分布。为此,这项工作专门专注于验证镀镍吸管控制径向溶解的相关方法。这里,原始的吸气剂以及装载具有不同质量比的氢气和氘的吸气剂被用作氚的非酰基激替代,这一思想是方法可以容易地扩展到氚化的吸气器组件。这里,使用电压辅助电化学溶解技术,依次溶解表面镍层以及块状锆层。通过对电解质溶液的周期性元素分析和后溶解后的周期性元素分析互动。

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