Bedoukian   RussellIPM   RussellIPM   Piezoelectric Micro-Sprayer


Home
Animal Taxa
Plant Taxa
Semiochemicals
Floral Compounds
Semiochemical Detail
Semiochemicals & Taxa
Synthesis
Control
Invasive spp.
References

Abstract

Guide

Alphascents
Pherobio
InsectScience
E-Econex
Counterpart-Semiochemicals
Print
Email to a Friend
Kindly Donate for The Pherobase

« Previous AbstractInsect Infestation Increases Viscosity of Biogenic Secondary Organic Aerosol    Next AbstractDouglas-fir tussock moth: sex pheromone identification and synthesis »

J Occup Environ Hyg


Title:Intra-workday fluctuations of airborne contaminant concentration and the time-weighted average
Author(s):Smith PA;
Address:"Occupational Safety and Health Administration, U.S. Department of Labor Directorate of Technical Support and Emergency Management, Washington, DC, USA"
Journal Title:J Occup Environ Hyg
Year:2022
Volume:20221111
Issue:12
Page Number:742 - 758
DOI: 10.1080/15459624.2022.2132258
ISSN/ISBN:1545-9632 (Electronic) 1545-9624 (Linking)
Abstract:"Air contaminant concentrations vary between and within workdays and are often measured across a workday by passing a known air volume through a collection device. Laboratory analysis determines the contaminant mass trapped, providing a time-weighted average air concentration (C(TWA)). This approach was driven by the best technologies available as exposure measurement processes developed and accuracy and measurement precision were sought. However, all integrated concentration*time (C*t) values determining C(TWA) are equally weighted in assessing exposures, intra-workday concentration variability is unknown, and results are available days later. At times inappropriately, an occupational exposure limit (OEL) expressed as a C(TWA) also requires equal weighting of all C*t values across an exposure period following concepts of Haber's law. Continuous monitoring (real-time detection) informs both the C(TWA) and the variability of C during sampling, which are needed for stressors where a ceiling or peak OEL exists, for dangerous exposures to permanent gas-type contaminants, and for immediately dangerous to life or health (IDLH) conditions. Selective and accurate real-time detection instruments are not available for all air contaminants, but exposure magnitude information may be provided. The large amounts of data from continuous monitoring and the ability to correlate exposure maxima to specific tasks are also important. An exposure assessment role exists for selective and nonselective monitors, and in some cases, similar accuracy and precision are provided compared to laboratory analyses. Continuous monitoring may be of value when the alternative is the collection of a few C(TWA) data points. Digitized personal monitor data can support the automation of some exposure control decisions or allow such decisions to be made by people in near real-time. The emerging Internet of Things (IoT) offers opportunities to integrate digital exposure data into decision-making to increase both efficiency and safety. The perceived and real uncertainty associated with real-time exposure assessments may be lessened with work to rule out the presence of know interferents and confirm the presence of target analytes"
Keywords:Humans *Occupational Exposure/analysis Surveys and Questionnaires Environmental Monitoring/methods Continuous monitoring Haber's law IoT industrial hygiene sample real-time detection time-weighted average;
Notes:"MedlineSmith, Philip A eng England 2022/10/04 J Occup Environ Hyg. 2022 Dec; 19(12):742-758. doi: 10.1080/15459624.2022.2132258. Epub 2022 Nov 11"

 
Back to top
 
Citation: El-Sayed AM 2024. The Pherobase: Database of Pheromones and Semiochemicals. <http://www.pherobase.com>.
© 2003-2024 The Pherobase - Extensive Database of Pheromones and Semiochemicals. Ashraf M. El-Sayed.
Page created on 28-09-2024