Literature DB >> 10472320

Mass concentration and elemental composition of PM10 in classrooms.

N A Janssen1, G Hoek, B Brunekreef, H Harssema.   

Abstract

OBJECTIVES: To investigate the sources of high concentrations of particles of < 10 microns diameter (PM10) in classrooms, observed in a previous study on childhood exposure to PM10, and to study the correlation between classroom and outdoor concentrations of mass and elements of PM10. <br> METHODS: Measurements of PM10 were conducted in two schools and outdoors in Amsterdam, the Netherlands. Averaging time was 24 hours for the outdoor measurements and both 8 hours (school time) and 24 hours for the classroom measurements. Analysis by x ray fluorescence was used to measure the elemental composition of 55 samples from the 11 days when measurements were conducted simultaneously in both classrooms and outdoors. <br> RESULTS: For most elements, classroom concentrations were considerably higher than outdoor concentrations, especially during school hours. The highest classroom/outdoor ratios were found for the elements from soils Si, Ca, and Ti. The only measured elements that were not increased were S, Br, Pb, and Cl, which are dominated by non-crustal sources. For S, Br, and Pb, which are generally associated with particles < 1 micron, significant correlations between classroom and outdoor concentrations and between the two classrooms were found. The other elements generally had low correlations. <br> CONCLUSIONS: The results show that the high PM10 concentrations found in our classrooms are probably due to resuspension of coarse particles or suspension of soil material. Due to these excess coarse particles, the correlation between classroom and outdoor concentrations is lower for elements associated with coarse particles than for elements associated with fine particles. As the general composition of PM10 in classrooms differs from the composition of PM10 in ambient air, the high PM10 mass concentrations in classrooms can probably not be directly compared with ambient air quality guidelines.

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Year:  1999        PMID: 10472320      PMCID: PMC1757765          DOI: 10.1136/oem.56.7.482

Source DB:  PubMed          Journal:  Occup Environ Med        ISSN: 1351-0711            Impact factor:   4.402


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Review 1.  Indoor particles: a review.

Authors:  L Wallace
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Authors:  H Ozkaynak; J Xue; J Spengler; L Wallace; E Pellizzari; P Jenkins
Journal:  J Expo Anal Environ Epidemiol       Date:  1996 Jan-Mar

3.  Indoor and outdoor concentrations of inorganic acidic aerosols and gases.

Authors:  M Brauer; P Koutrakis; G J Keeler; J D Spengler
Journal:  J Air Waste Manage Assoc       Date:  1991-02

Review 4.  The sizes of particulate sulfate and nitrate in the atmosphere--a review.

Authors:  J B Milford; C I Davidson
Journal:  JAPCA       Date:  1987-02

5.  Personal exposure to fine particles in children correlates closely with ambient fine particles.

Authors:  N A Janssen; G Hoek; H Harssema; B Brunekreef
Journal:  Arch Environ Health       Date:  1999 Mar-Apr

Review 6.  Measurement methods to determine compliance with ambient air quality standards for suspended particles.

Authors:  J C Chow
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7.  Particle Total Exposure Assessment Methodology (PTEAM) 1990 study: method performance and data quality for personal, indoor, and outdoor monitoring.

Authors:  K W Thomas; E D Pellizzari; C A Clayton; D A Whitaker; R C Shores; J Spengler; H Ozkaynak; S E Froehlich; L A Wallace
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Review 8.  The sizes of particulate trace elements in the atmosphere--a review.

Authors:  J B Milford; C I Davidson
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9.  Personal exposure to respirable particulates and sulfates.

Authors:  D W Dockery; J D Spengler
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10.  Validation of personal exposure models for sulfate and aerosol strong acidity.

Authors:  H H Suh; P Koutrakis; J D Spengler
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