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Effects of Zr-hydride distribution of irradiated Zircaloy-2 cladding in RIA-simulating pellet-clad mechanical interaction testing

机译:辐照Zircaloy-2熔覆层中Zr氢化物分布在RIA模拟颗粒包覆机械相互作用测试中的作用

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A series of simulated reactivity-initiated accident (RIA) tests on irradiated fully recrystallized?boiling water reactor Zircaloy-2 cladding has been performed by means of the expansion-due-to-compression (EDC) test method. The EDC method reproduces fuel pellet–clad mechanical interaction (PCMI) conditions for the cladding during RIA transients with respect to temperature and loading rates by out-of-pile mechanical testing. The tested materials had a large variation in burnup and hydrogen content (up to 907?wppm). The results of the EDC tests showed variation in the PCMI resistance of claddings with similar burnup and hydrogen content, making it difficult to clearly identify ductile-to-brittle transition temperatures. The EDC-tested samples of the present and previous work were investigated by light optical and scanning electron microscopy to study the influence of factors such as?azimuthal variation of the Zr-hydrides and the presence of hydride rims and radially oriented hydrides. Two main characteristics were identified in samples with low ductility with respect to hydrogen content and test temperature: hydride rims and radial hydrides at the cladding outer surface. Crack propagation and failure modes were also studied, showing two general modes of crack propagation depending on distribution and amount of radially oriented hydrides. It was concluded that the PCMI resistance of irradiated cladding under normal conditions with homogenously distributed circumferential hydrides is high, with good margin to the RIA failure limits. To further improve safety, focus should be on conditions causing nonfavorable hydride distribution, such as hydride reorientation and formation of hydride blisters at the cladding outer surface.
机译:已通过膨胀-压缩-压缩(EDC)测试方法对辐照的完全重结晶沸水反应堆Zircaloy-2覆层进行了一系列模拟的反应性引发事故(RIA)测试。 EDC方法通过堆外机械测试,再现了RIA瞬变期间燃料包壳与包壳之间的机械相互作用(PCMI)条件,该条件与温度和负载率有关。被测材料的燃耗和氢含量差异很大(高达907?wppm)。 EDC测试的结果表明,在燃耗和氢含量相似的情况下,包层的PCMI电阻也发生了变化,因此很难清楚地识别出韧性到脆性的转变温度。通过光学和扫描电子显微镜对EDC测试过的本样品和以前的样品进行了研究,以研究诸如Zr-氢化物的方位角变化以及氢化物边沿和放射状氢化物的存在等因素的影响。就氢含量和测试温度而言,在延展性较低的样品中鉴定出两个主要特征:覆层外表面的氢化物边沿和放射状氢化物。还研究了裂纹扩展和破坏模式,显示了两种一般的裂纹扩展模式,具体取决于径向氢化物的分布和数量。结论是,在正常条件下,具有均匀分布的周向氢化物的辐照熔覆层的PCMI电阻较高,可以很好地满足RIA失效极限。为了进一步提高安全性,应将重点放在引起不利的氢化物分布的条件上,例如氢化物重新定向和在覆层外表面形成氢化物水泡。

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