Literature DB >> 31512864

Particulate Matter Measurement Indoors: A Review of Metrics, Sensors, Needs, and Applications.

Scott D Lowther1,2, Kevin C Jones1, Xinming Wang2, J Duncan Whyatt1, Oliver Wild1, Douglas Booker3.   

Abstract

Many populations spend ∼90% of their time indoors, with household particulate matter being linked to millions of premature deaths worldwide. Particulate matter is currently measured using particle mass, particle number, and particle size distribution metrics, with other metrics, such as particle surface area, likely to be of increasing importance in the future. Particulate mass is measured using gravimetric methods, tapered element oscillating microbalances, and beta attenuation instruments and is best suited to use in compliance monitoring, trend analysis, and high spatial resolution measurements. Particle number concentration is measured by condensation particle counters, optical particle counters, and diffusion chargers. Particle number measurements are best suited to source characterization, trend analysis and ultrafine particle investigations. Particle size distributions are measured by gravimetric impactors, scanning mobility particle sizers, aerodynamic particle sizers, and fast mobility particle sizers. Particle size distribution measurements are most useful in source characterization and particulate matter property investigations, but most measurement options remain expensive and intrusive. However, we are on the cusp of a revolution in indoor air quality monitoring and management. Low-cost sensors have potential to facilitate personalized information about indoor air quality (IAQ), allowing citizens to reduce exposures to PM indoors and to resolve potential dichotomies between promoting healthy IAQ and energy efficient buildings. Indeed, the low cost will put this simple technology in the hands of citizens who wish to monitor their own IAQ in the home or workplace, to inform lifestyle decisions. Low-cost sensor networks also look promising as the solution to measuring spatial distributions of PM indoors, however, there are important sensor/data quality, technological, and ethical barriers to address with this technology. An improved understanding of epidemiology is essential to identify which metrics correlate most with health effects, allowing indoor specific PM standards to be developed and to inform the future of experimental applications.

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Year:  2019        PMID: 31512864     DOI: 10.1021/acs.est.9b03425

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  3 in total

1.  Laboratory Chamber Evaluation of Flow Air Quality Sensor PM2.5 and PM10 Measurements.

Authors:  Natalie Crnosija; Misti Levy Zamora; Ana M Rule; Devon Payne-Sturges
Journal:  Int J Environ Res Public Health       Date:  2022-06-15       Impact factor: 4.614

2.  Indoor Air Quality in Domestic Environments during Periods Close to Italian COVID-19 Lockdown.

Authors:  Maria Chiara Pietrogrande; Lucia Casari; Giorgia Demaria; Mara Russo
Journal:  Int J Environ Res Public Health       Date:  2021-04-12       Impact factor: 3.390

3.  Miniature Optical Particle Counter and Analyzer Involving a Fluidic-Optronic CMOS Chip Coupled with a Millimeter-Sized Glass Optical System.

Authors:  Gabriel Jobert; Pierre Barritault; Maryse Fournier; Cyrielle Monpeurt; Salim Boutami; Cécile Jamois; Pietro Bernasconi; Andrea Lovera; Daniele Braga; Christian Seassal
Journal:  Sensors (Basel)       Date:  2021-05-03       Impact factor: 3.576

  3 in total

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