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Development of Metallic Magnetic Calorimeters for Nuclear Safeguards Applications.

机译:研制用于核保障的金属磁热计。

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摘要

Many nuclear safeguards applications could benefit from high-resolution gamma-ray spectroscopy achievable with metallic magnetic calorimeters. This dissertation covers the development of a system for these applications based on gamma-ray detectors developed at the University of Heidelberg. It demonstrates new calorimeters of this type, which achieved an energy resolution of 45.5 eV full-width at half-maximum at 59.54 keV, roughly ten times better than current state of the art high purity germanium detectors. This is the best energy resolution achieved with a gamma-ray metallic magnetic calorimeter at this energy to date. In addition to demonstrating a new benchmark in energy resolution, an experimental system for measuring samples with metallic magnetic calorimeters was constructed at Lawrence Livermore National Laboratory. This system achieved an energy resolution of 91.3 eV full-width at half-maximum at 59.54 keV under optimal conditions. Using this system it was possible to characterize the linearity of the response, the count-rate limitations, and the energy resolution as a function of temperature of the new calorimeter. With this characterization it was determined that it would be feasible to measure 242Pu in a mixed isotope plutonium sample. A measurement of a mixed isotope plutonium sample was performed over the course of 12 days with a single two-pixel metallic magnetic calorimeter. The relative concentration of 242Pu in comparison to other plutonium isotopes was determined by direct measurement to less than half a percent accuracy. This is comparable with the accuracy of the best-case scenario using traditional indirect methods. The ability to directly measure the relative concentration of 242Pu in a sample could enable more accurate accounting and detection of indications of undeclared activities in nuclear safeguards, a better constraint on source material in forensic samples containing plutonium, and improvements in verification in a future plutonium disposition treaty.
机译:许多核保障措施应用都可以受益于金属磁热计可实现的高分辨率伽马射线光谱。本论文涵盖了基于海德堡大学开发的伽马射线探测器针对这些应用的系统的开发。它展示了这种新的量热仪,在59.54 keV处的一半最大处实现了全尺寸45.5 eV的能量分辨率,大约是当前最新的高纯度锗探测器的十倍。这是迄今为止用伽马射线金属磁热计获得的最佳能量分辨率。除了展示能量分辨率的新基准外,劳伦斯·利弗莫尔国家实验室还建立了使用金属磁热计测量样品的实验系统。在最佳条件下,该系统在59.54 keV时的一半最大值处实现了91.3 eV全宽的能量分辨率。使用该系统,可以表征响应的线性,计数率限制和能量分辨率,作为新量热仪温度的函数。通过这种表征,可以确定在混合同位素p样品中测量242Pu是可行的。使用单个两像素金属磁热计在12天的过程中对混合同位素p样品进行了测量。与其他p同位素相比,242Pu的相对浓度是通过直接测量确定的,准确度不到0.5%。这与使用传统间接方法的最佳情况的准确性相当。直接测量样品中242Pu相对浓度的能力可以更准确地核算和检测核保障措施中未申报活动的迹象,更好地限制含有containing的法医样品中的原料,并改善未来future处置的验证条约。

著录项

  • 作者

    Bates, Cameron Russell.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Nuclear engineering.;Nuclear physics and radiation.
  • 学位 Ph.D.
  • 年度 2015
  • 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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