首页> 外文会议>Conference on Phase Transformations in Inorganic Materials;PTM >Oxygen, Hydrogen and Main Alloying Chemical Elements Partitioning Upon Alpha↔Beta Phase Transformation in Zirconium Alloys
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Oxygen, Hydrogen and Main Alloying Chemical Elements Partitioning Upon Alpha↔Beta Phase Transformation in Zirconium Alloys

机译:锆合金中α,β相转变时的氧,氢和主要合金化化学元素分配

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Due to their adequate properties, zirconium alloys are the reference materials for the nuclear fuel cladding tubes of Light Water Reactors (LWR). During some hypothetical accidental High Temperature (HT) transients, the materials should experience heavy steam oxidation and deep metallurgical evolutions. This promotes Alpha-Beta phase transformations and an associated strong partitioning of oxygen/hydrogen and of the main chemical alloying elements (Nb, Sn, Fe and Cr). Moreover, it has been shown quite recently that such chemical elements partitioning during on-cooling Beta-to-Alpha transformation can strongly impact the residual mechanical properties of HT oxidized materials. Thus, it appeared that it was important to better quantify and, if possible, to compute the quite complex phase equilibrium that occurs in multi-alloyed zirconium materials in the presence of both oxygen and hydrogen. For that, systematic studies have been performed on industrial alloys, charged with oxygen and/or hydrogen. After applying different heating/cooling scenarii, both Electron Microprobe using Wave Dispersive Spectrometry (WDS) and Nuclear Microprobe using Elastic Recoil Detection Analysis (ERDA) have been applied. Finally, to support the observed chemical elements partitioning between the Alpha and Beta allotropic phases, some thermodynamic calculations have been performed thanks to the development and the use of a specific thermodynamic database for zirconium alloys called "Zircobase".
机译:锆合金由于其足够的性能而成为轻水反应堆(LWR)核燃料包壳管的参考材料。在某些假设的意外高温(HT)瞬变过程中,材料应经历剧烈的蒸汽氧化和深层冶金演变。这促进了Alpha-Beta相变以及相关的氧/氢和主要化学合金元素(Nb,Sn,Fe和Cr)的强烈分配。此外,最近已经表明,在冷却的Beta到Alpha转化过程中,这种化学元素的分配会强烈影响HT氧化材料的残留机械性能。因此,似乎重要的是更好地量化并且,如果可能的话,计算在氧和氢均存在的情况下在多合金锆材料中发生的相当复杂的相平衡。为此,已经对填充有氧气和/或氢气的工业合金进行了系统研究。在应用不同的加热/冷却方案后,已应用了使用波分散光谱(WDS)的电子微探针和使用弹性反冲检测分析(ERDA)的核微探针。最后,为了支持观察到的化学元素在Alpha和Beta同素异形相之间的分配,由于开发并使用了称为“ Zircobase”的锆合金专用热力学数据库,已经进行了一些热力学计算。

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