Literature DB >> 33108019

Particulate matter emitted from ultrasonic humidifiers-Chemical composition and implication to indoor air.

Chester J Lau1, Max Loebel Roson1, Keifer M Klimchuk1, Tania Gautam1, Boyang Zhao1, Ran Zhao1.   

Abstract

Household humidification is widely practiced to combat dry indoor air. While the benefits of household humidification are widely perceived, its implications to the indoor air have not been critically appraised. In particular, ultrasonic humidifiers are known to generate fine particulate matter (PM). In this study, we first conducted laboratory experiments to investigate the size, quantity, and chemical composition of PM generated by an ultrasonic humidifier. The mass of PM generated showed a correlation with the total alkalinity of charge water, suggesting that CaCO3 is likely making a major contribution to PM. Ion chromatography analysis revealed a large amount of SO4 2- in PM, representing a previously unrecognized indoor source. Preliminary results of organic compounds being present in humidifier PM are also presented. A whole-house experiment was further conducted at an actual residential house, with five low-cost sensors (AirBeam) monitoring PM in real time. Operation of a single ultrasonic humidifier resulted in PM2.5 concentrations up to hundreds of μg m-3 , and its influence extended across the entire household. The transport and loss of PM2.5 depended on the rate of air circulation and ventilation. This study emphasizes the need to further investigate the impact of humidifier operation, both on human health and on the indoor atmospheric chemistry, for example, partitioning of acidic and basic compounds.
© 2020 John Wiley & Sons A/S. Published by John Wiley & Sons Ltd.

Entities:  

Keywords:  Indoor air quality; air circulation and ventilation; chemical analysis; household measurement; humidifier; indoor air pollutants; particulate matter

Year:  2020        PMID: 33108019     DOI: 10.1111/ina.12765

Source DB:  PubMed          Journal:  Indoor Air        ISSN: 0905-6947            Impact factor:   5.770


  2 in total

1.  Short-term exposure to urban PM2.5 particles induces histopathological and inflammatory changes in the rat small intestine.

Authors:  Lena Ohlsson; Christina Isaxon; Sebastian Wrighton; Wissal El Ouahidi; Lisa Fornell; Lena Uller; Saema Ansar; Ulrikke Voss
Journal:  Physiol Rep       Date:  2022-04

2.  Modeling Clothing as a Vector for Transporting Airborne Particles and Pathogens across Indoor Microenvironments.

Authors:  Jacob Kvasnicka; Elaine A Cohen Hubal; Jeffrey A Siegel; James A Scott; Miriam L Diamond
Journal:  Environ Sci Technol       Date:  2022-04-11       Impact factor: 11.357

  2 in total

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