低温红外光谱法测定粉尘中低浓度二氧化硅结晶。

W. Chisholm, Taekhee Lee, M. Chirila
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引用次数: 3

摘要

美国政府工业卫生学家会议(ACGIH)接受了可吸入结晶二氧化硅(RCS)暴露的较低阈值(TLV),为25 μg/m3,是以前TLV的一半。这种变化是有问题的,因为NIOSH、OSHA和MSHA目前使用的标准取样和测量方法不够敏感,无法让分析师自信地确定在TLV附近获得的样品。为了满足对一种更灵敏的方法来分析结晶二氧化硅呼吸性粉尘过滤器样品的需求,目前正在开发一种改进的NIOSH红外光谱分析方法。通过在77k下进行红外吸光度测量获得了额外的灵敏度,其中吸光度峰由于较窄而更强烈。一种快速变化的低温恒温器已经被制造出来,使得样品可以被引入光谱仪,在5分钟内冷却到77 K,询问1分钟,并在2分钟内取出并为另一个样品准备低温恒温器,每个样品的周转时间为8分钟,与制备和重新沉积样品所需的时间相比,这是短暂的。因此,样品可以用传统的采样器,过滤器,泵,光谱仪和样品制备来获取和询问,唯一的修改是在光谱仪上增加一个低温恒温器。初步实验表明,从室温冷却到77 K时,800 cm-1附近石英特征带的峰本比增加了约50%。在室温和77 K条件下得到的校准曲线的斜率表明,低温法的灵敏度大约高出25%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determination of Crystalline Silica in Dust at Low Concentrations by Low-Temperature Infrared Spectrometry.
The American Conference of Governmental Industrial Hygienists (ACGIH) accepted a lower threshold limit value (TLV) for respirable crystalline silica (RCS) exposure of 25 μg/m3, half of the previous TLV. This change is problematic because the current standard sampling and measurement practices used by NIOSH, OSHA, and MSHA are not sensitive enough to allow an analyst to confidently determine samples acquired near the TLV. In response to this need for a more sensitive method to analyze respirable dust filter samples for crystalline silica, a modification of current NIOSH infrared spectrometric methods is being developed. The additional sensitivity is gained by performing the infrared absorbance measurements at 77 K where absorbance peaks are more intense by virtue of being narrower. A quick-change cryostat has been fabricated such that a sample can be introduced to the spectrometer and cooled to 77 K in 5 min, interrogated for 1 min, and removed and the cryostat readied for another sample in 2 min, for a turnaround time of 8 min per sample, which is brief compared to the time required to prepare and redeposit a sample. Therefore, samples can be acquired and interrogated with legacy samplers, filters, pumps, spectrometers, and sample preparation, the only modification being the addition of a cryostat to the spectrometer. Preliminary experiments demonstrate that the peak-to-background ratio of the quartz signature band near 800 cm-1 increases by approximately 50 % on cooling from room temperature to 77 K. The slopes of the calibration curve derived from standards interrogated at both room temperature and 77 K indicate that the low-temperature method is approximately 25 % more sensitive.
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