Open Access
Issue |
E3S Web Conf.
Volume 111, 2019
CLIMA 2019 Congress
|
|
---|---|---|
Article Number | 06065 | |
Number of page(s) | 4 | |
Section | Sustainable Urbanization and Energy System Integration | |
DOI | https://doi.org/10.1051/e3sconf/201911106065 | |
Published online | 13 August 2019 |
- R. Godoi, D. Avigo, V. Campos and T. Tavares, Indoor air quality assessment of elementary schools in Curitiba, Water Air Soil Poll,9, pp. 171–177, (2009) [CrossRef] [Google Scholar]
- S. Lee and M. Chang, Indoor and outdoor air quality investigation at schools in Hong Kong, Chemosphere,41, pp. 109–113, (2000) [PubMed] [Google Scholar]
- D. Avigo, A. Godoi, P. Janissek and Y. Makarovska, Particulate Matter analysis at elementary schools in Curitiba, Anal. Bioanal. Chem.,391, p. 1459–1468, (2008) [Google Scholar]
- S. Rovelli, A. Cattaneo, C. P. Nuzzi, A. Spinazze, S. Piazza, P. Carrer and D. M. Cavallo, Airborne Particulate Matter in School Classrooms of Northern Italy, Int. J. Environ. Res. Public Health,11, pp. 1398–1421, (2014) [Google Scholar]
- M. Branis, P. Rezacofa and M. Domasofa, The effect of outdoor air and indoor human activity on mass concentration of PM10, PM2.5 and PM1 in a classroom, Environ. Res,99, pp. 143–149, (2005) [CrossRef] [PubMed] [Google Scholar]
- A. Shiue, S. Cheng Hu and M.-L. Tu, Particles Removal by Negative Ionic Air Purifier in Cleanroom, Aerosol and Air Quality Research,11, p. 179–186, (2011) [Google Scholar]
- A. J. DeGregoria and T. J. Kaminski, Integrated heat recovery ventilator HEPA filter using a HEPA filter material regenerative heat exchanger. US Patent US6289974B1, 11 07 (1997) [Google Scholar]
- E. E. Lars, Ourdoor Air Contaminants and Indoor Air Quality under Transient Conditions, Indoor Air,4, pp. 189–196, (1994) [Google Scholar]
- J. Park, Y. Jang, Y. Ahn, S. Cheong and J. Lee, Estimation of Appropriate Capacity of Ventilation System Based on the Air Infiltration rate in Korean Classroom, Mechanical Science and Technology,22, pp. 788–797, (2008) [Google Scholar]
- H. Ozkaynak, J. Spengler, J. Xue, P. Koutrakis, E. Pellizzari and L. Wallace, Sources and factors influencing personal and indoor exposures to particles: findings from the particle TEAM pilot study., Indoor Air ‘93: Proceedings of the 6th International Conference on Indoor Air Quality and Climate, 3, pp. 457-462, (1993). [Google Scholar]
- H. Ozkaynak, J. Xue, R. Weker, D. Butler and J. Spengler, The Particle TEAM (PTEAM) study: analysis of the data. Draft final report, US EPA, NC, (1993a). [Google Scholar]
- T. Thatcher and D. Layton, Deposition, Resuspension, and penetration of particles within a residence, Atmospheric Environment, 29, pp. 1487-1497, (1995). [Google Scholar]
- L. Wallace, Indoor Particles: A Review, Air & Waste Management Association, 46:2, pp. 98-126, (1996) [CrossRef] [Google Scholar]
- D. Trinh, L. Y. Alleman, P. Coddeville and J.-C. Galloo, Indoor Particle Dynamics in School: Determination of air exchange rate, size-resolved partcle deposition rate and penetration factor in real life condition, Indoor and built Environment, 26 (10), pp. 1335-1350, (2017) [CrossRef] [Google Scholar]
- D. Licina, Y. Tian and W. Nazaroff, Emission rates and the personal cloud effect associated with particle release from the perihuman environment, Indoor Air,27, pp. 791–802, (2017) [CrossRef] [PubMed] [Google Scholar]
- ASHRAE, Ventilation for Acceptable Indoor Air Quality (standard 62.1-2013), American Society of Heating, Refrigerating, and Air-conditioning Engineers, Inc, Atlanta, (2013). [Google Scholar]
- KACA, Indoor Air Cleaners, Korea Air Cleaning Association, Seoul, (2006) [Google Scholar]
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