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Advanced Characterization of Hydrides in Zirconium Alloys

机译:锆合金中氢化物的先进表征

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The mechanical properties of zirconium alloys are affected by the presence of hydrides. The strain fields around hydrides, which are affected by the size, orientation, and hydride phase, are believed to influence the apparent hysteresis between solubility limits on heating and cooling. TEM characterization of dislocation fields near hydrides in Zircaloy-4 specimens, which were exposed to 300 °C primary-water conditions for 600 h, was performed both before and after a heating and cooling cycle. In addition, EELS characterization is provided before heating. In situ TEM imaging/recording and nano-diffraction allowed monitoring of the morphology of dissolving hydrides throughout the temperature cycling. No dislocations in the matrix surrounding the hydrides were visible prior to heating; however, when the hydrides dissolved, dislocations were visible in the space the hydrides had previously occupied, providing a map of the original hydride distribution. These dislocation 'nests' are likely the preferential sites for subsequent hydride precipitation and elucidate the so-called 'memory effect'. Advancing the understanding of hydride formation kinetics, hydride morphology, and hydrogen solid solubility limits can help to reduce uncertainties and conservatism when addressing the risks of hydrogen embrittlement and hydride cracking in zirconium components.
机译:锆合金的机械性能受氢化物存在的影响。彼此受氢化物周围的应变场,其受到尺寸,取向和氢化物相的影响,以影响溶解度限制在加热和冷却之间的表观滞后。在加热和冷却循环之前和之后,在加热和冷却循环之前和之后,在600℃下暴露于300℃的施用至300℃的氢化物中氢化物的脱位场的TEM表征。此外,在加热之前提供EELS表征。原位TEM成像/记录和纳米衍射允许监测在整个温度循环过程中溶解氢化物的形态。在加热之前可见氢化物周围的基质中没有脱臼;然而,当透氢溶解时,在氢化物之前占据的空间中可见脱位,提供原始氢化物分布的地图。这些位错的“巢穴”可能是后续氢化物沉淀的优先遗址,并阐明所谓的“记忆效应”。推进对氢化物形成动力学,氢化物形态和氢固体溶解度限制的理解可以有助于在解决锆组分中氢气脆化和氢化物裂化的风险时降低不确定性和保守主义。

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