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Hydride Precipitates in Zirconium Alloys: Evolution of Dissolution and Precipitation Temperatures During Thermal Cycling Correlated to Microstructure Features

机译:锆合金中的氢化物沉淀:热循环过程中溶解和沉淀温度的变化与微观结构特征相关

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The fast and spontaneous hydrogen diffusion in zirconium alloys used in the nuclear industry leads to the hydride precipitation which is often pointed as causing embrittlement and rupture. Our studies using X-ray Diffraction (XDR), Transmission Electron Microscopy (TEM) and Scanning Electron Microscopy coupled to Back-Scatter Diffraction (SEM-EBSD) have been demonstrating that the nature of the hydride phase precipitate depends on the hydrogen content, and can show crystallographic orientation relationships (ORs) with the substrate. Differential Scanning Calorimetry (DSC) has been used to identify the dissolution and precipitation energies at global scale. The difference of both can be associated to the misfit dislocations contribution to the precipitation. Local In-situ TEM dissolution observations confirm the dissolution temperature identified at a global scale and show the depinning of some misfit dislocations during dissolution process. The consequence of this mechanism is that dissolution and precipitation temperatures shift during thermal cyclic loading. This situation will be correlated to the nature of crystallographic hydride phases and their ORs.
机译:在核工业中使用的锆合金中氢的快速自发扩散会导致氢化物沉淀,这通常被认为会导致脆化和破裂。我们使用X射线衍射(XDR),透射电子显微镜(TEM)和扫描电子显微镜结合背向散射衍射(SEM-EBSD)进行的研究表明,氢化物相沉淀物的性质取决于氢含量,并且可以显示与衬底的晶体取向关系(OR)。差示扫描量热法(DSC)已用于识别全球范围内的溶出能和沉淀能。两者的差异可能与位错错配对降水的贡献有关。本地原位TEM溶出观察证实了在全球范围内确定的溶出温度,并显示了溶出过程中某些失配位错的固定。这种机理的结果是,在热循环加载过程中,溶解温度和沉淀温度会发生变化。这种情况将与结晶氢化物相及其OR的性质相关。

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