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硫化氢气体的多元光学计算检测。

Hydrogen Sulfide Gas Detection via Multivariate Optical Computing.

机构信息

Sensor Physics Department, Halliburton Company, 3000 N. Sam Houston Pkwy E., Houston, TX 77032, USA.

Department of Chemistry and Biochemistry, University of South Carolina, Columbia, SC 29208, USA.

出版信息

Sensors (Basel). 2018 Jun 22;18(7):2006. doi: 10.3390/s18072006.

Abstract

Hydrogen-sulfide gas is a toxic, colorless gas with a pungent odor that occurs naturally as a decomposition by-product. It is critical to monitor the concentration of hydrogen sulfide. Multivariate optical computing (MOC) is a method that can monitor analytes while minimizing responses to interferences. MOC is a technique by which an analogue calculation is performed entirely in the optical domain, which simplifies instrument design, prevents the drift of a calibration, and increases the strength and durability of spectroscopic instrumentation against physical perturbation when used for chemical detection and identification. This paper discusses the detection of hydrogen-sulfide gas in the ultraviolet (UV) spectral region in the presence of interfering gaseous species. A laboratory spectroscopic measurement system was set up to acquire the UV spectra of H₂S and interference gas mixtures in high-pressure/high-temperature (HPHT) conditions. These spectra were used to guide the design and fabrication of a multivariate optical element (MOE), which has an expected measurement relative accuracy of 3.3% for H₂S, with a concentration in the range of 0⁻150 nmol/mL. An MOC validation system with the MOE was used to test three samples of H₂S and mercaptans mixtures under various pressures, and the relative accuracy of H₂S measurement was determined to be 8.05%.

摘要

硫化氢气体是一种有毒、无色、具有刺激性气味的气体,是一种自然分解的副产品。监测硫化氢浓度非常重要。多变量光学计算(MOC)是一种可以在最小化干扰响应的情况下监测分析物的方法。MOC 是一种在光学域中完全执行模拟计算的技术,它简化了仪器设计,防止了校准的漂移,并在用于化学检测和识别时增加了光谱仪器对物理干扰的强度和耐用性。本文讨论了在存在干扰气体的情况下在紫外(UV)光谱区域中检测硫化氢气体。建立了一个实验室光谱测量系统,以在高压/高温(HPHT)条件下获取 H₂S 和干扰气体混合物的 UV 光谱。这些光谱用于指导多变量光学元件(MOE)的设计和制造,该元件对 H₂S 的预期测量相对精度为 3.3%,浓度范围为 0⁻150 nmol/mL。使用带有 MOE 的 MOC 验证系统测试了三种 H₂S 和硫醇混合物在不同压力下的样品,确定 H₂S 测量的相对精度为 8.05%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/006c/6069242/e36f91cfa27a/sensors-18-02006-g001.jpg

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