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Zirconia-magnesia inert matrix fuel and waste form: Synthesis, characterization and chemical performance in an advanced fuel cycle.

机译:氧化锆-镁惰性基质燃料和废物形式:高级燃料循环中的合成,表征和化学性能。

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摘要

There is a significant buildup in plutonium stockpiles throughout the world, because of spent nuclear fuel and the dismantling of weapons. The radiotoxicity of this material and proliferation risk has led to a desire for destroying excess plutonium. To do this effectively, it must be fissioned in a reactor as part of a uranium free fuel to eliminate the generation of more plutonium. This requires an inert matrix to volumetrically dilute the fissile plutonium. Zirconia-magnesia dual phase ceramic has been demonstrated to be a favorable material for this task. It is neutron transparent, zirconia is chemically robust, magnesia has good thermal conductivity and the ceramic has been calculated to conform to current economic and safety standards. This dissertation contributes to the knowledge of zirconia-magnesia as an inert matrix fuel to establish behavior of the material containing a fissile component. First, the zirconia-magnesia inert matrix is synthesized in a dual phase ceramic containing a fissile component and a burnable poison. The chemical constitution of the ceramic is then determined. Next, the material performance is assessed under conditions relevant to an advanced fuel cycle. Reactor conditions were assessed with high temperature, high pressure water. Various acid solutions were used in an effort to dissolve the material for reprocessing. The ceramic was also tested as a waste form under environmental conditions, should it go directly to a repository as a spent fuel. The applicability of zirconia-magnesia as an inert matrix fuel and waste form was tested and found to be a promising material for such applications.
机译:由于乏核燃料和武器的拆除,全世界p库存大量增加。这种材料的放射毒性和扩散风险导致了对销毁过量p的渴望。为了有效地做到这一点,必须在反应堆中将其作为无铀燃料的一部分进行裂变,以消除更多more的产生。这需要惰性基质以体积上稀释可裂变p。已经证明氧化锆-镁双相陶瓷是用于该任务的有利材料。它是中子透明的,氧化锆具有化学稳健性,氧化镁具有良好的导热性,并且陶瓷的计算符合当前的经济和安全标准。本论文有助于提高氧化锆-镁作为惰性基质燃料的知识,从而确定含有易裂变成分的材料的性能。首先,在含有易裂变成分和可燃毒物的双相陶瓷中合成氧化锆-镁惰性基质。然后确定陶瓷的化学组成。接下来,在与先进的燃料循环有关的条件下评估材料性能。用高温高压水评估反应器条件。为了溶解用于后处理的材料,使用了各种酸溶液。陶瓷还应在环境条件下作为废料形式进行测试,如果将其作为废燃料直接运到储存库中。测试了氧化锆-镁作为惰性基质燃料和废物形式的适用性,发现它是用于此类应用的有前途的材料。

著录项

  • 作者

    Holliday, Kiel Steven.;

  • 作者单位

    University of Nevada, Las Vegas.;

  • 授予单位 University of Nevada, Las Vegas.;
  • 学科 Engineering Nuclear.;Chemistry Nuclear.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 182 p.
  • 总页数 182
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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