Open Access
| Issue |
E3S Web Conf.
Volume 672, 2025
The 17th ROOMVENT Conference (ROOMVENT 2024)
|
|
|---|---|---|
| Article Number | 01042 | |
| Number of page(s) | 7 | |
| Section | Indoor Climate: IAQ | |
| DOI | https://doi.org/10.1051/e3sconf/202567201042 | |
| Published online | 05 December 2025 | |
- L. Robert, R. Guichard, J. Klingler, V. Cochet, C. Mandin, Indoor Air Quality in Shopping and Storage Areas, Indoor Air (2020) [Google Scholar]
- L. Robert, R. Guichard, J. Klingler, Work Exposure to VOC in Storage Areas of Retail Stores, Annals of Work Exposures and Health (2020) [Google Scholar]
- M.M. Loh, E.A. Houseman, G.M. Gray, J.I. Levy, J.D. Spengler, D.H. Bennett, Measured concentrations of VOCs in several non-residential microenvironments in the United States, Environmental Sciences and Technology, 40 (2006) [Google Scholar]
- E.L. Nirlo, N. Crain, R.L. Corsi, J.A. Siegel, Volatile organic compounds in fourteen U.S. retail stores. Indoor Air, 24 (2014) [Google Scholar]
- F. Haghighat, L. De Bellis, Material emission rates: Literature review and the impact of indoor air temperature and relative humidity, Building and Environment, 33 (1998) [Google Scholar]
- F. Caron, R. Guichard, L. Robert, M. Verrièle, F. Thévenet, Behaviour of individual VOCs in indoor environments: How ventilation affects emission from materials, Atmospheric Environment (2020) [Google Scholar]
- ISO 7730:2005, Ergonomics of the thermal environment - Analytical determination and interpretation of thermal comfort using calculation of the PMV and PPD indices and local thermal comfort criteria (2005) [Google Scholar]
- P.O Fanger, Thermal Comfort, McGraw Hill, (1970) [Google Scholar]
- D. Raimondo, A. Bassu, S.P. Corgnati, A. Trifiro, Energy consumption and thermal comfort assessment in retail stores: monitoring and dynamic simulation applied to a case study in Turin, 6th International Building Physics Conference (2015) [Google Scholar]
- M. Zhao, Y.S. Kim, J. Srebric, Occupant perceptions and a health outcome in retail stores. Building and Environment, 93 (2015) [Google Scholar]
- W. Liang, P. Gao, J. Guan, X. Yang, Modeling volatile organic compound (VOC) concentrations due to material emissions in a real residential unit. Part I: Methodology and a preliminary case study, Building simulation, 5 (2012) [Google Scholar]
- W.W Nazaroff, Indoor particle dynamics. Indoor Air, 14 (2004) [Google Scholar]
- N. Ma, D. Aviv, H. Guo, W.W. Braham, Measuring the right factors: A review of variables and models for thermal comfort and indoor air quality, Renewable and Sustainable Energy Reviews, 135 (2021) [Google Scholar]
- WHO guidelines for indoor air quality: selected pollutants, World Health Organization (2010) [Google Scholar]
- J. Riberon, M. Derbez, M. Lethrosne, S. Kirchner, Impact of airing behaviour on air stuffiness in schools and daycare centers: development of a specific tool for ventilation management, 12th International conference on indoor air quality and climate, Indoor Air (2011) [Google Scholar]
- P.C Dessureault, B. Gressard, Data collection and verification of the agreement between the corrected air temperature and the WBGT in outdoor thermal environments, Report R-476 (2006) [Google Scholar]
- Légifrance, Arrêté du 19 avril 2011 relatif à l’étiquetage des produits de construction ou de revêtement de mur ou de sol et des peintures et vernis sur leurs émissions de polluants volatils (2011) [Google Scholar]
- Légifrance, Décret n° 2021-1763 du 23 décembre 2021 portant modification des concentrations moyennes en poussières totales et alvéolaires dans les locaux à pollution spécifique (2021) [Google Scholar]
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