Literature DB >> 30359926

Development of an in-home, real-time air pollutant sensor platform and implications for community use.

Sara E Gillooly1, Yulun Zhou2, Jose Vallarino3, MyDzung T Chu3, Drew R Michanowicz4, Jonathan I Levy5, Gary Adamkiewicz3.   

Abstract

Air pollution exposure characterization has been shaped by many constraints. These include technologies that lead to insufficient coverage across space and/or time in order to characterize individual or community-level exposures with sufficient accuracy and precision. However, there is now capacity for continuous monitoring of many air pollutants using comparatively inexpensive, real-time sensors. Crucial questions remain regarding whether or not these sensors perform adequately for various potential end uses and whether performance varies over time or across ambient conditions. Performance scrutiny of sensors via lab- and field-testing and calibration across their lifetime is necessary for interpretation of data, and has important implications for end users including cost effectiveness and ease of use. We developed a comparatively lower-cost, portable, in-home air sampling platform and a guiding development and maintenance workflow that achieved our goal of characterizing some key indoor pollutants with high sensitivity and reasonable accuracy. Here we describe the process of selecting, validating, calibrating, and maintaining our platform - the Environmental Multi-pollutant Monitoring Assembly (EMMA) - over the course of our study to-date. We highlight necessary resources and consider implications for communities or researchers interested in developing such platforms, focusing on PM2.5, NO, and NO2 sensors. Our findings emphasize that lower-cost sensors should be deployed with caution, given financial and resource costs that greatly exceed sensor costs, but that selected community objectives could be supported at lesser cost and community-based participatory research strategies could be used for more wide-ranging goals.
Copyright © 2018 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Air pollution monitoring; Citizen science; Indoor air pollution; Lower-cost sensor technology; Sensor calibration

Mesh:

Substances:

Year:  2018        PMID: 30359926      PMCID: PMC6250577          DOI: 10.1016/j.envpol.2018.10.064

Source DB:  PubMed          Journal:  Environ Pollut        ISSN: 0269-7491            Impact factor:   8.071


  34 in total

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4.  Exposure error masks the relationship between traffic-related air pollution and heart rate variability.

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5.  Comparison of indoor air quality in smoke-permitted and smoke-free multiunit housing: findings from the Boston Housing Authority.

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8.  Activity pattern and personal exposure to nitrogen dioxide in indoor and outdoor microenvironments.

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9.  Fine particulate matter constituents associated with cardiovascular hospitalizations and mortality in New York City.

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3.  Real-time indoor PM2.5 monitoring in an urban cohort: Implications for exposure disparities and source control.

Authors:  MyDzung T Chu; Sara E Gillooly; Jonathan I Levy; Jose Vallarino; Lacy N Reyna; Jose Guillermo Cedeño Laurent; Brent A Coull; Gary Adamkiewicz
Journal:  Environ Res       Date:  2020-12-02       Impact factor: 6.498

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6.  MCR: Open-Source Software to Automate Compilation of Health Study Report-Back.

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  7 in total

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