首页> 外文期刊>Journal of Analytical Methods in Chemistry >Construction and evaluation of an automated flow injection-stopped flowanalyser for multipoint reaction rate spectrophotometric methods. Determinationof ammonia nitrogen, creatinine and phosphate
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Construction and evaluation of an automated flow injection-stopped flowanalyser for multipoint reaction rate spectrophotometric methods. Determinationof ammonia nitrogen, creatinine and phosphate

机译:用于多点反应速率分光光度法的自动流动停止流动分析仪的构建和评估。氨氮,肌酐和磷酸盐的测定

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The construction and evaluation of a fully automated Flow Injection-Stopped Flow (FI-SF) spectrophotometric analyser is described. A microcomputer (Rockwell AIM 65) is used to control the analyser (sample injection, stop and start of the pump) through a suitable interface. Data acquisition is achieved using a 12 bit ADC card and a suitable subroutine in 6502 assembly language, allowing data sampling at a frequency of 7.5 kHz. The measurement interface and software were evaluated using a voltage ramp generator. A precision of 0.02-1.1% RSD (N =10) was obtained for voltage ramps in the range of 1-37 mVs-1. The FI-SF analyser was evaluated in routine analysis by developing FI-SF kinetic spectrophotometric methods for the determination of ammonia nitrogen (20-250 ppm, 0.4-2.5% RSD) based on theBerthelot reaction, creatinine (20-220 ppm, 0.9-3.6% RSD) based on the Jaffé reaction, and phosphate (5-30 ppm, 1.0-3.3% RSD) based on the phosphomolybdenum blue reaction. The reaction rate is measured by linear fitting of multiple absorbance readings vs time. Algorithms for automated estimation of the residence time, the linear range of the reaction curve, and data treatment are presented.
机译:描述了全自动流动注射-停止流动(FI-SF)分光光度分析仪的构造和评估。微型计算机(Rockwell AIM 65)用于通过合适的界面控制分析仪(样品进样,泵的停止和启动)。使用12位ADC卡和6502汇编语言的合适子例程可实现数据采集,从而允许以7.5 kHz的频率进行数据采样。使用电压斜坡发生器评估测量接口和软件。对于1-37 mVs-1范围内的电压斜坡,其RSD精度为0.02-1.1%(N = 10)。通过开发FI-SF动力学分光光度法在常规分析中对FI-SF分析仪进行评估,该方法用于根据Berthelot反应,肌酐(20-220 ppm,0.9-N)测定氨氮(20-250 ppm,0.4-2.5%RSD)。基于Jaffé反应的RSD为3.6%,基于磷钼蓝反应的磷酸盐为RPD(5-30 ppm,1.0-3.3%)。通过多个吸光度读数与时间的线性拟合来测量反应速率。提出了自动估计停留时间,反应曲线线性范围和数据处理的算法。

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