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Self-attenuation corrections calculated by LabSOCS Simulations for gamma-spectrometric measurements with HPGe detectors

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【作者】 田自宁欧阳晓平刘洋陈亮刘金良张显鹏宋纪文曾鸣

【Author】 TIAN Zi-Ning;OUYANG Xiao-Ping;LIU Yang;CHEN Liang;LIU Jin-Liang;ZHANG Xian-Peng;SONG Ji-Wen;ZENG Ming;Key Laboratory of Particle & Radiation Imaging (Tsinghua University), Department of Engineering Physics,Ministry of Education;Northwest Institute of Nuclear Technology;School of Nuclear Science and Engineering, North China Electric Power University;

【机构】 Key Laboratory of Particle & Radiation Imaging (Tsinghua University), Department of Engineering Physics,Ministry of EducationNorthwest Institute of Nuclear TechnologySchool of Nuclear Science and Engineering, North China Electric Power University

【摘要】 Simulations from Laboratory Sourceless Object Counting System(LabSOCS) software were used to determine self-attenuation correction factor, which is defined as the efficiency ratio of the sample with the absorbing medium to that of the sample without absorbing medium. The semi-empirical self-attenuation correction formula F(μ) used to correct self-attenuation of a sample was applied. A comparison of the two methods reveals that formula of sample with φ75 mm×25 mm and φ75 mm×10 mm can be, respectively, used in the self-attenuation correction forμ in the ranges of 0 to 0.5 cm-1and 0.5 cm-1to 2.0 cm-1, indicating that the semi-empirical formula will not be used when μ has exceeded the interval. The semi-empirical formula value is consistent with the experimental value, within7.9% accuracy. Therefore, this method is correct and effective. Both of our two methods can accurately produce a relative self-attenuation correction factor when the composition of the sample is known. The self-attenuation correction of a sample with unknown composition can only be carried out using a semi-empirical formula method.

【Abstract】 Simulations from Laboratory Sourceless Object Counting System(LabSOCS) software were used to determine self-attenuation correction factor, which is defined as the efficiency ratio of the sample with the absorbing medium to that of the sample without absorbing medium. The semi-empirical self-attenuation correction formula F(μ) used to correct self-attenuation of a sample was applied. A comparison of the two methods reveals that formula of sample with φ75 mm×25 mm and φ75 mm×10 mm can be, respectively, used in the self-attenuation correction forμ in the ranges of 0 to 0.5 cm-1and 0.5 cm-1to 2.0 cm-1, indicating that the semi-empirical formula will not be used when μ has exceeded the interval. The semi-empirical formula value is consistent with the experimental value, within7.9% accuracy. Therefore, this method is correct and effective. Both of our two methods can accurately produce a relative self-attenuation correction factor when the composition of the sample is known. The self-attenuation correction of a sample with unknown composition can only be carried out using a semi-empirical formula method.

【基金】 Supported by National Natural Science Foundation of China(11105106,11275150,11175142,11275154)
  • 【文献出处】 Chinese Physics C ,中国物理C , 编辑部邮箱 ,2014年07期
  • 【分类号】O571.323
  • 【被引频次】3
  • 【下载频次】50
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