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Determining the Impact of Concrete Roadways on Gamma Ray Background Readings for Radiation Portal Monitoring Systems

机译:确定混凝土巷道对辐射门监控系统的伽马射线背景读数的影响

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摘要

The dissolution of the Soviet Union coupled with the growing sophistication of international terror organizations has brought about a desire to ensure that a sound infrastructure exists to interdict smuggled nuclear material prior to leaving its country of origin. To combat the threat of nuclear trafficking, radiation portal monitors (RPMs) are deployed around the world to intercept illicit material while in transit by passively detecting gamma and neutron radiation. Portal monitors in some locations have reported abnormally high gamma background count rates. The higher background data has been attributed, in part, to the concrete surrounding the portal monitors. Higher background can ultimately lead to more material passing through the RPMs undetected.This work is focused on understanding the influence of the concrete surrounding the monitors on the total gamma ray background for the system. This research employed a combination of destructive and nondestructive analytical techniques with computer simulations to form a model that may be adapted to any RPM configuration. Six samples were taken from three different composition concrete slabs. The natural radiologcal background of these samples was determined using a high-purity germanium (HPGe) detector in conjunction with the Canberra In-Situ Object Counting System (ISOCS?) and Genie? 2000 software packages. The composition of each sample was determined using thermal and fast neutron activation analysis (NAA) techniques.The results from these experiments were incorporated into a Monte Carlo N-Particle (MNCP) photon transport simulation to determine the expected gamma ray count rate in the RPM due to the concrete.The results indicate that a quantitative estimate may be possible if the experimental conditions are optimized to eliminate sources of uncertainty. Comparisons of actual and simulated count rate data for 137Cs check sources showed that the model was accurate to within 15%. A comparison of estimated and simulated count rates in one concrete slab showed that the model was accurate to within 4%. Subsequent sensitivity analysis showed that if the elemental concentrations are well known, the carbon and hydrogen content could be easily estimated. Another sensitivity analysis revealed that the small fluctuations in density have a minimal impact on the gamma count rate.The research described by this thesis provides a method by which RPM end users may quantitatively estimate the expected gamma background from concrete foundations beneath the systems. This allows customers to adjust alarm thresholds to compensate for the elevated background due to the concrete, thereby increasing the probability of intercepting illicit radiological and nuclear material.
机译:苏联解散,加上国际恐怖组织的日趋复杂,带来了一种愿望,即确保在离开原籍国之前存在健全的基础设施来拦截走私的核材料。为了应对核贩运的威胁,在世界各地部署了辐射门户监控器(RPM),以通过被动检测伽马和中子辐射来拦截运输途中的非法物质。在某些位置的门户网站监控器报告了异常高的伽玛背景计数率。较高的背景数据部分归因于门户网站监视器周围的具体情况。较高的背景最终可能导致更多材料通过未检测到的RPM。这项工作的重点是了解显示器周围混凝土对系统总伽马射线背景的影响。这项研究采用了破坏性和非破坏性分析技术与计算机模拟相结合的方法,以形成可以适应任何RPM配置的模型。从三个不同组成的混凝土板中采集了六个样品。这些样品的自然放射学背景是使用高纯度锗(HPGe)检测器与堪培拉现场物体计数系统(ISOCS?)和Genie? 2000个软件包。使用热和快速中子活化分析(NAA)技术确定每个样品的成分,并将这些实验的结果合并到Monte Carlo N粒子(MNCP)光子传输模拟中,以确定RPM中的预期伽马射线计数率结果表明,如果优化实验条件以消除不确定性源,则可能进行定量估计。 137Cs检查源的实际和模拟计数率数据的比较表明,该模型的准确度在15%以内。对一块混凝土板中估计计数率和模拟计数率的比较表明,该模型的准确度在4%以内。随后的敏感性分析表明,如果元素浓度众所周知,则可以轻松估算碳和氢含量。另一项敏感性分析表明,密度的微小波动对伽马计数率的影响最小。本文描述的研究提供了一种方法,通过该方法,RPM最终用户可以从系统下方的混凝土基础中定量估计预期的伽马背景。这使客户可以调整警报阈值,以补偿由于混凝土引起的背景升高,从而增加了拦截非法放射和核材料的可能性。

著录项

  • 作者

    Ryan Christopher Michael;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 en_US
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