Formaldehyde Vapor Characteristics in Varied Decontamination Environments.

IF 0.5 Q4 PUBLIC, ENVIRONMENTAL & OCCUPATIONAL HEALTH
Y. W. Choi, M. Sunderman, M. McCauley, W. Richter, Z. Willenberg, J. Wood, S. Serre, L. Mickelsen, Stuart A. Willison, R. Rupert, Jorge G. Muñiz Ortiz, Sara Casey, M. Calfee
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引用次数: 2

Abstract

Introduction This effort investigated formaldehyde vapor characteristics under various environmental conditions by the analyses of air samples collected over a time-course. This knowledge will help responders achieve desired formaldehyde exposure parameters for decontamination of affected spaces after a biological contamination incident. Methods Prescribed masses of paraformaldehyde and formalin were sublimated or evaporated, respectively, to generate formaldehyde vapor. Adsorbent cartridges were used to collect air samples from the test chamber at predetermined times. A validated method was used to extract the cartridges and analyze for formaldehyde via liquid chromatography. In addition, material demand for the formaldehyde was evaluated by inclusion of arrays of Plexiglas panels in the test chamber to determine the impact of varied surface areas within the test chamber. Temperature was controlled with a circulating water bath connected to a radiator and fan inside the chamber. Relative humidity was controlled with humidity fixed-point salt solutions and water vapor generated from evaporated water. Results Low temperature trials (approximately 10°C) resulted in decreased formaldehyde air concentrations throughout the 48-hour time-course when compared with formaldehyde concentrations in the ambient temperature trials (approximately 22°C). The addition of clear Plexiglas panels to increase the surface area of the test chamber interior resulted in appreciable decreases of formaldehyde air concentration when compared to an empty test chamber. Conclusion This work has shown that environmental variables and surface-to-volume ratios in the decontaminated space may affect the availability of formaldehyde in the air and, therefore, may affect decontamination effectiveness.
不同净化环境下甲醛蒸气特性研究
本研究通过对一段时间内收集的空气样本进行分析,研究了甲醛蒸气在各种环境条件下的特征。这一知识将有助于响应者在生物污染事件发生后达到对受影响空间进行净化所需的甲醛暴露参数。方法将规定质量的多聚甲醛和福尔马林分别升华或蒸发,产生甲醛蒸气。吸附剂盒用于在预定时间从测试室收集空气样品。采用一种有效的方法提取药筒,并通过液相色谱法分析甲醛。此外,通过在测试室内安装有机玻璃板阵列来评估甲醛的材料需求,以确定测试室内不同表面积的影响。温度是通过一个与室内散热器和风扇相连的循环水浴来控制的。用湿度定点盐溶液和蒸发水产生的水蒸气控制相对湿度。结果与环境温度试验(约22°C)相比,慢温试验(约10°C)在48小时的时间过程中导致甲醛空气浓度降低。添加透明有机玻璃板以增加测试室内部的表面积,与空测试室相比,甲醛空气浓度明显降低。结论净化空间的环境变量和表面体积比可能影响空气中甲醛的可用性,从而影响净化效果。
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来源期刊
Applied Biosafety
Applied Biosafety Environmental Science-Management, Monitoring, Policy and Law
CiteScore
2.50
自引率
13.30%
发文量
27
期刊介绍: Applied Biosafety (APB), sponsored by ABSA International, is a peer-reviewed, scientific journal committed to promoting global biosafety awareness and best practices to prevent occupational exposures and adverse environmental impacts related to biohazardous releases. APB provides a forum for exchanging sound biosafety and biosecurity initiatives by publishing original articles, review articles, letters to the editors, commentaries, and brief reviews. APB informs scientists, safety professionals, policymakers, engineers, architects, and governmental organizations. The journal is committed to publishing on topics significant in well-resourced countries as well as information relevant to underserved regions, engaging and cultivating the development of biosafety professionals globally.
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