用于识别微粒物质的便携式红外系统

Javier Núñez, Arjen Boersma, R. Koldeweij, Joseph Trimboli
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引用次数: 0

摘要

职业暴露于空气中的粉尘是许多呼吸道和心血管疾病的罪魁祸首。由于存在这些危害,因此需要定期在过滤器上收集空气样本并送去实验室分析,以确保符合相关规定。遗憾的是,这种方法往往需要数周时间才能得出结果,因此无法确定粉尘来源或实时保护工人。为了应对这些挑战,我们开发了一种通过光谱化学特征描述空气中粉尘特性的系统。在这一设备中,一个微型旋风分离器将空气中的微粒集中起来,并将其导入一个空心波导管,从而获得红外特征。然后,利用一种算法,结合最相关化学组的红外特征并补偿米氏散射,对可吸入颗粒的成分进行量化。通过这种方法,该系统可以近乎实时地成功区分与建筑工地相关的无机材料混合物。自由空间光学组件的使用大大提高了光吞吐量,在 10 分钟采样时间内可达到约 10 µg/m3 的检测限。虽然这项工作的重点是可吸入结晶二氧化硅,但我们希望该平台的灵活性能够使我们在其他职业环境中检测到不同的气溶胶。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Portable Infrared System for Identification of Particulate Matter
Occupational exposure to airborne dust is responsible for numerous respiratory and cardiovascular diseases. Because of these hazards, air samples are regularly collected on filters and sent for laboratory analysis to ensure compliance with regulations. Unfortunately, this approach often takes weeks to provide a result, which makes it impossible to identify dust sources or protect workers in real time. To address these challenges, we developed a system that characterizes airborne dust by its spectro-chemical profile. In this device, a micro-cyclone concentrates particles from the air and introduces them into a hollow waveguide where an infrared signature is obtained. An algorithm is then used to quantitate the composition of respirable particles by incorporating the infrared features of the most relevant chemical groups and compensating for Mie scattering. With this approach, the system can successfully differentiate mixtures of inorganic materials associated with construction sites in near-real time. The use of a free-space optic assembly improves the light throughput significantly, which enables detection limits of approximately 10 µg/m3 with a 10 minute sampling time. While respirable crystalline silica was the focus of this work, it is hoped that the flexibility of the platform will enable different aerosols to be detected in other occupational settings.
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