首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Continuous Online Fourier Transform Infrared (FT-IR) Spectrometry Analysis of Hydrogen Chloride (HCl), Carbon Dioxide (CO_2), and Water (H_2O) in Nitrogen-Rich and Ethylene-Rich Streams
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Continuous Online Fourier Transform Infrared (FT-IR) Spectrometry Analysis of Hydrogen Chloride (HCl), Carbon Dioxide (CO_2), and Water (H_2O) in Nitrogen-Rich and Ethylene-Rich Streams

机译:富氮和富乙烯流中的氯化氢(HCl),二氧化碳(CO_2)和水(H_2O)的连续在线傅立叶变换红外(FT-IR)光谱分析

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摘要

The prevalence of optical spectroscopy techniques being applied to the online analysis of continuous processes has increased in the past couple of decades. The ability to continuously "watch" changing stream compositions as operating conditions change has proven invaluable to pilot and world-scale manufacturing in the chemical and petrochemical industries. Presented here is an application requiring continuous monitoring of parts per million (ppm) by weight levels of hydrogen chloride (HCl), water (H_2O), and carbon dioxide (CO_2) in two gas-phase streams, one nitrogen-rich and one ethylene-rich. Because ethylene has strong mid-infrared (IR) absorption, building an IR method capable of quantifying HCl, H_2O, and CO_2 posed some challenges. A long-path (5.11m) Fourier transform infrared (FT-IR) spectrometer was used in the mid-infrared region between 1800 and 5000 cm~(-1), with a 1 cm~(-1) resolution and a 10 s spectral update time. Sample cell temperature and pressure were controlled and measured to minimize measurement variability. Models using a modified classical least squares method were developed and validated first in the laboratory and then using the process stream. Analytical models and process sampling conditions were adjusted to minimize interference of ethylene in the ethylene-rich stream. The predictive capabilities of the measurements were ±0.5 ppm for CO_2 in either stream; ±1.1 and ±1.3 ppm for H_2O in the nitrogen-rich and ethylene-rich streams, respectively; and ±1.0 and ±2.4 ppm for HCl in the nitrogen-rich and ethylene-rich streams, respectively. Continuous operation of the instrument in the process stream was demonstrated using an automated stream switching sample system set to 10 min intervals. Response time for all components of interest was sufficient to acquire representative stream composition data. This setup provides useful insight into the process for troubleshooting and optimizing plant operating conditions.
机译:在过去的几十年中,用于连续过程在线分析的光谱学技术越来越普及。随着操作条件的变化,连续“观察”变化的物流成分的能力已被证明对化学和石化行业的中试和世界规模的制造具有不可估量的价值。这里提出的应用程序需要连续监测两种气相物流,一种富氮和一种乙烯中的氯化氢(HCl),水(H_2O)和二氧化碳(CO_2)的重量份百万分之一(ppm) -丰富。由于乙烯具有很强的中红外(IR)吸收能力,因此建立一种能够定量HCl,H_2O和CO_2的IR方法提出了一些挑战。在1800至5000 cm〜(-1)之间的中红外区域使用了长距离(5.11m)傅里叶变换红外(FT-IR)光谱仪,分辨率为1 cm〜(-1),时间为10 s频谱更新时间。控制并测量样品池的温度和压力,以最大程度地减少测量变异性。使用改进的古典最小二乘法方法开发的模型首先在实验室中进行验证,然后再使用工艺流程进行验证。调整分析模型和过程采样条件,以最大程度地减少乙烯在富乙烯物流中的干扰。测量的预测能力对于任一物流中的CO_2为±0.5 ppm;富氮流和富乙烯流中的H_2O分别为±1.1和±1.3 ppm;富氮和富乙烯流中的HCl分别为±1.0和±2.4 ppm。使用设置为10分钟间隔的自动流切换采样系统演示了仪器在过程流中的连续操作。所有感兴趣的组件的响应时间足以获取代表性的流组成数据。此设置为故障排除和优化工厂运行条件的过程提供了有用的见解。

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