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首页> 外文期刊>Journal of Radioanalytical and Nuclear Chemistry: An International Journal Dealing with All Aspects and Applications of Nuclear Chemistry >Further developments of a robust absolute calibration method utilizing beta/gamma coincidence techniques
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Further developments of a robust absolute calibration method utilizing beta/gamma coincidence techniques

机译:利用β/伽马重合技术的稳健绝对校准方法的进一步发展

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Performing accurate and verifiable measurements is often the most challenging goal for any radiation detector and is especially challenging for the radio-xenon detectors deployed by the International Monitoring System (IMS) of the Preparatory Commission of the Comprehensive Test Ban Treaty Organization (CTBTO). Often the accuracy of the measurement is directly tied to how well the detector is calibrated, in both energy and efficiency. Standard methods often rely on using certified sealed sources to determine the absolute efficiency. Similarly, efforts to calibrate the absolute efficiency of radioactive gas cell detectors utilize a number of methodologies which allow adequate calibration but are time consuming and prone to a host of difficulties to determine uncertainties (McIntyre et al, J Radioanal Nucl Chem 282(3):755-759, 2009; Anderson et al, Stat Probab Lett 77(88):769-773, 2007). Utilizing methods developed in the 1960s for absolute measurements of activity with beta-gamma detector systems it has become clear that it is possible to achieve higher precision results that are consistent across a range of isotopes and activities (National Council on Radiation Protection and Measurement, A handbook of radioactivity measurements procedure NCPR report, 1985). Even more compelling is the ease with which this process can be used on routine samples to determine the total activity present in the detector. Additionally, recent advances in the generation of isotopically pure radio-xenon samples of ~131mXe, ~133Xe, and ~(135)Xe allow these measurement techniques to achieve much better results than have previously been possible when using mixed isotopic radio-xenon sources (Haas et al, J Radioanal Nucl Chem 282(3):677-680, 2009). This paper will discuss the beta/gamma absolute detection efficiency techniques of direct measurement of the efficiencies and the extrapolation method and compare the results using modeled and measured pure sources of ~(133)Xe and ~(135)Xe.
机译:进行准确和可验证的测量通常是任何辐射探测器面临的最大挑战,对于全面禁止核试验条约组织(CTBTO)筹备委员会国际监测系统(IMS)部署的放射性氙探测器尤其具有挑战性。通常,测量的准确性直接取决于检测器的能量和效率校准程度。标准方法通常依赖于使用经过认证的密封源来确定绝对效率。类似地,校准放射性气体电池检测器绝对效率的努力采用了许多方法,这些方法可以进行适当的校准,但既费时又易于确定不确定性(McIntyre等人,J Radioanal Nucl Chem 282(3): 755-759,2009; Anderson等,Stat Probab Lett 77(88):769-773,2007)。利用1960年代开发的方法对β-γ探测器系统进行活度的绝对测量,很明显,可以实现在各种同位素和活度范围内一致的更高精度结果(国家辐射防护与测量理事会,A放射性测量程序手册(NCPR报告,1985年)。更令人信服的是,此过程可轻松用于常规样品以确定检测器中存在的总活性。此外,〜131mXe,〜133Xe和〜(135)Xe同位素纯放射性氙样品的最新进展使这些测量技术比以前使用混合同位素放射性氙气源可以获得更好的结果( Haas等,J Radioanal Nucl Chem 282(3):677-680,2009)。本文将讨论直接测量效率的β/γ绝对检测效率技术和外推法,并使用〜(133)Xe和〜(135)Xe的纯模型源和实测结果对结果进行比较。

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