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Distinction and quantification of carry-over and sample interaction in gas segmented continuous flow analysis

机译:气体分段连续流分析中残留和样品相互作用的区分和定量

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摘要

The formulae for calculation of carry-over and sample interactionare derived for the first time in this study. A scheme proposed by Thiers et al. (two samples of low concentration followed by a high concentration sample and low concentration sample) is verified and recommended for the determination of the carry-over coeffcient.The derivation demonstrates that both widely used schemes of a high concentration sample followed by two low concentration samples, and a low concentration sample followed by two high concentration samples actually measure the sum of the carry-overcoeffcient and sample interaction coefficient. A scheme of three low concentration samples followed by a high concentration sample is proposed and verified for determination of the sample interaction coeffcient. Experimental results indicate that carry-over is a strongfunction of cycle time and a weak function of ratio of sample time to wash time. Sample dispersion is found to be a function of sample time. Fitted equations can be used to predict the carry-over, absorbance and dispersion given sample times, and wash timesfor an analytical system. Results clearly show the important role of intersample air segmentation in reducing carry-over, sample interaction and dispersion.
机译:本研究首次导出了残留物和样品相互作用的计算公式。 Thiers等人提出的方案。验证(两个低浓度样品后跟一个高浓度样品和一个低浓度样品)并推荐用于测定残留系数。推导表明,这两种广泛使用的高浓度样品后跟两个低浓度样品的方案,然后依次是低浓度样品和两个高浓度样品,它们实际上测量了超载系数和样品相互作用系数的总和。提出了三个低浓度样品,然后是高浓度样品的方案,并进行了验证,以测定样品的相互作用系数。实验结果表明,残留是循环时间的强函数,而样品时间与洗涤时间之比的函数弱。发现样品分散是样品时间的函数。拟合方程可用于预测给定样品时间和分析系统的清洗时间的残留,吸光度和色散。结果清楚地表明了样品间空气分割在减少残留,样品相互作用和分散中的重要作用。

著录项

  • 作者

    Zhang, Jia-Zhong;

  • 作者单位
  • 年度 1997
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
  • 中图分类

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