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Proposing a gamma radiation based intelligent system for simultaneous analyzing and detecting type and amount of petroleum by-products

机译:提出基于伽马辐射的智能系统,用于同时分析和检测石油副产品的类型和数量

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It is important for operators of poly-pipelines in petroleum industry to continuously monitor characteristics of transferred fluid such as its type and amount. To achieve this aim, in this study a dual energy gamma attenuation technique in combination with artificial neural network (ANN) is proposed to simultaneously determine type and amount of four different petroleum by-products. The detection system is composed of a dual energy gamma source, including americium-241 and barium-133 radioisotopes, and one 2.54?cm?×?2.54?cm sodium iodide detector for recording the transmitted photons. Two signals recorded in transmission detector, namely the counts under photo peak of Americium-241 with energy of 59.5?keV and the counts under photo peak of Barium-133 with energy of 356?keV, were applied to the ANN as the two inputs and volume percentages of petroleum by-products were assigned as the outputs.
机译:重要的是石油工业的多管道运营商,以连续监测转移液体的特性,如其类型和量。为了实现这一目标,在本研究中,提出了与人工神经网络(ANN)组合的双能γ衰减技术,同时确定四种不同的石油副产物的类型和数量。检测系统由双能伽马源组成,包括Americ-241和Barium-133放射性机电图,以及一个2.54Ω·cm≤x≤x≤2.54Ω·cm碘化钠检测器,用于记录透射的光子。在传输检测器中记录的两个信号,即americ-241的照片峰值下的计数,其能量为59.5?Kev和钡-133的照片峰值的计数为356°C 133的计数,以356Ω·keV为356 keV,以两个输入应用于ANN。分配石油副产品的体积百分比作为输出。

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