利用HPGe谱和线性回归定量分析土壤中Ra-226和U-235

IF 1.6 3区 化学 Q3 CHEMISTRY, ANALYTICAL
Nguyen An Trung, Nguyen Hao Quang, Nguyen Thi Thu Ha, Duong Duc Thang, Nguyen Chi Thanh, Phung Nhu Hai
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引用次数: 0

摘要

本研究旨在利用Scikit-Learn库建立线性回归模型,利用HPGe γ能谱仪直接定量土壤中的Ra-226和U-235。所提出的方法消除了与Rn-222及其衰变产物的放射性平衡的需要,并且绕过了传统的光谱校正程序。该模型在包含20,000个合成8192通道伽马谱的数据集上进行了训练,对两种放射性核素的量化精度均在15%以内。研究结果强调了该模型的简单性和可靠性,强调了它作为常规环境放射性评估的快速实用工具的潜力,特别是在克服光谱重叠和平衡约束所带来的挑战方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantification of Ra-226 and U-235 in soil using HPGe gamma spectra and linear regression

This study aims to develop a linear regression model using the Scikit-Learn libraries for direct quantification of Ra-226 and U-235 in soil using HPGe gamma spectrometers. The proposed approach eliminates the need for radioactive equilibrium with Rn-222 and its decay products, as well as bypasses conventional spectral correction procedures. The model was trained on a dataset comprising 20,000 synthetic 8192-channel gamma spectra and achieved quantification accuracies within 15% for both radionuclides. The findings highlight the model’s simplicity and reliability, underscoring its potential as a rapid and practical tool for routine environmental radioactivity assessment, particularly for overcoming challenges posed by spectral overlap and equilibrium constraints.

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来源期刊
CiteScore
2.80
自引率
18.80%
发文量
504
审稿时长
2.2 months
期刊介绍: An international periodical publishing original papers, letters, review papers and short communications on nuclear chemistry. The subjects covered include: Nuclear chemistry, Radiochemistry, Radiation chemistry, Radiobiological chemistry, Environmental radiochemistry, Production and control of radioisotopes and labelled compounds, Nuclear power plant chemistry, Nuclear fuel chemistry, Radioanalytical chemistry, Radiation detection and measurement, Nuclear instrumentation and automation, etc.
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