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Effects of the Fabrication Process and Thermal Cycling on the Oxidation of Zirconium-Niobium Pressure Tubes.

机译:制备工艺和热循环对锆铌压力管氧化的影响。

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摘要

Pressure tubes made of Zr-2.5%Nb alloy are used to contain fuels and coolant in CANDU nuclear power reactors The pressure tube oxidizes during reactor operation and hydrogen ingress through the oxide grown on the tube limits its lifetime. Little attention was paid to the intermediate tube manufacturing processes in enhancing the oxidation resistance. In addition, the oxide grown on the tube experiences various thermal cycles depending on the reactor shutdown and startup cycles. To address these two aspects and to better understand the oxidation process of the Zr-2.5Nb tube, research was conducted in two parts: (i) effects of tube fabrication on oxidation behavior, and (ii) thermal cycling behaviors of oxides grown on a pressure tube.;In the second part, the oxides grown on a standard Zr-2.5Nb pressure tube were analyzed by X-ray diffraction peak broadening and line shift. Crystallite size, t-ZrO2 fraction and residual stress of the zirconium oxides were investigated upon several thermal cycles at DeltaT range of 500°C--750°C. The oxide residual stresses measured by the sin2psi method were always compressive around 2 GPa. Different stress-states were noticed with the oxides grown on different sections of pressure tube. The compressive stress was released when the oxide was thermally cycled at the highest DeltaT of 750°C. Discussion was given to the effects of anisotropic nature of thermal expansion coefficients and crystallographic texture on the stress-state of Zr oxides.;In the first part, the optimum manufacturing process was pursued to improve the corrosion resistance of Zr-2.5Nb tubes. Experimental micro-tubes were fabricated with various manufacturing routes in the stages of billet preparation, hot extrusion and cold drawing. These were oxidized in air at 400°C and 500°C, and in an autoclave at 360°C lithiated water. Microstructure and texture of the tubes and oxides were characterized with X-ray diffraction, scanning electron microscope and optical microscope. Special emphasis was given to examinations of the metal/oxide interface structures. A correlation between the manufacturing process and oxidation resistance was investigated in terms of tube microstructure and the metal/oxide interface structure. As a result, it was consistently observed that uniform interface structures were formed on the tubes which had a fine distribution of secondary phases. These microstructures were found to be beneficial in enhancing the oxidation resistance as opposed to the tubes that had coarse and continuous beta-Zr phases. Based on these observations, a schematic model of the oxidation process was proposed with respect to the oxidation resistance under oxidizing temperatures of 360°C, 400°C and 500°C.
机译:Zr-2.5%Nb合金制成的压力管用于容纳CANDU核反应堆中的燃料和冷却剂。压力管在反应堆运行期间发生氧化,并且氢通过在管上生长的氧化物进入而限制了其寿命。在增强抗氧化性方面,对中间管制造工艺的关注很少。另外,取决于反应器的关闭和启动循环,在管上生长的氧化物经历各种热循环。为了解决这两个方面并更好地了解Zr-2.5Nb管的氧化过程,进行了两个部分的研究:(i)管制造对氧化行为的影响,以及(ii)在纳米管上生长的氧化物的热循环行为在第二部分中,通过X射线衍射峰展宽和线位移分析了在标准Zr-2.5Nb压力管上生长的氧化物。在DeltaT范围为500°C--750°C的几个热循环下研究了氧化锆的微晶尺寸,t-ZrO2分数和残余应力。通过sin2psi方法测得的氧化物残余应力始终在2 GPa附近压缩。注意到在压力管的不同部分上生长的氧化物具有不同的应力状态。当氧化物在750°C的最高DeltaT下热循环时,释放了压应力。讨论了热膨胀系数的各向异性性质和晶体织构对Zr氧化物应力状态的影响。第一部分,为提高Zr-2.5Nb管的耐蚀性寻求最佳工艺。在坯料制备,热挤压和冷拉伸阶段,采用各种制造路线制造了实验性微管。它们在400℃和500℃的空气中以及在360℃的锂化水的高压釜中被氧化。用X射线衍射,扫描电子显微镜和光学显微镜对试管和氧化物的微观结构和织构进行了表征。特别强调了金属/氧化物界面结构的检查。根据管的微观结构和金属/氧化物界面结构,研究了制造工艺与抗氧化性之间的相关性。结果,一直观察到在次级相分布良好的管上形成了均匀的界面结构。与具有粗糙和连续的β-Zr相的管相反,发现这些微结构有利于增强抗氧化性。基于这些观察,针对在360℃,400℃和500℃的氧化温度下的抗氧化性,提出了氧化过程的示意性模型。

著录项

  • 作者

    Nam, Cheol.;

  • 作者单位

    McGill University (Canada).;

  • 授予单位 McGill University (Canada).;
  • 学科 Engineering Nuclear.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:45

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