Open Access
Issue
E3S Web Conf.
Volume 672, 2025
The 17th ROOMVENT Conference (ROOMVENT 2024)
Article Number 07039
Number of page(s) 6
Section Poster Articles: Ventilation & Energy Efficiency, Modelling & Measuring
DOI https://doi.org/10.1051/e3sconf/202567207039
Published online 05 December 2025
  1. K. Noh, M.-D Oh: Variation of clean air delivery rate and effective air cleaning ratio of room air cleaning devices. In: Building and Environment vol. 84 (2014). [Google Scholar]
  2. N. Weis, C. V. Hutter-Sumowski, A. Meyer, B. Neuweger,: Qualitätssicherung der Bestimmung der Luftwechselrate in Innenräumen – ein Methodenvergleich (Abschlussbericht) : Bremer Umweltinstitut GmbH im Auftrag des Umweltbundesamtes, 2019 [Google Scholar]
  3. ISO 12569: Thermal performance of buildings and materials - Determination of specific airflow rate in buildings - Tracer gas dilution method, 2017 [Google Scholar]
  4. ASTM E741-23: Standard Test Method for Determining Air Change in a Single Zone by Means of a Tracer Gas Dilution, 2023 [Google Scholar]
  5. VDI 4300-7:2001: Indoor-air pollution measurement - Measurement of indoor air change rate [Google Scholar]
  6. NT VVS 047: Buildings – ventilating air: Mean age of air, 1985 [Google Scholar]
  7. NT-Build: Buildings: Rate of ventilation in different parts of a building, 1982 [Google Scholar]
  8. GB/T 18801-2015: Air cleaner, 2015 [Google Scholar]
  9. ANSI/AHAM AC-1-2015: Method for Measuring Performance of Portable Household Electric Room Air Cleaners, 2015 [Google Scholar]
  10. ISO 16000-8: Indoor air -Part 8: Determination of local mean ages of air in buildings for characterizing ventilation conditions, 2007 [Google Scholar]
  11. D. Müller, M. Zeller: Eine alternative Methode zur Bestimmung der Luftungseffektivitat. HLH- Heizung Lüftung Klima Haustechnik vol. 51, Dusseldorf: VDI Verlag, 1996-1998. (2000), Nr. 11, pp. 30–37 [Google Scholar]
  12. B. Blocken, T. van Druenen, A. Ricci, L. Kang, T. van Hooff, P. Qin, L. XIA, C. Ruiz, J. H. Arts, et al.: Ventilation and air cleaning to limit aerosol particle concentrations in a gym during the COVID-19 pandemic. In: Building and Environment vol. 193, Elsevier (2021), p. 107659 [Google Scholar]
  13. Ch. Friebe, R. Krause, R. Heidenreich, R. Grüttner et al.: Test Procedures of Mobile Air Cleaning Devices - First Experiences and Results, 52nd AiCARR International Conference, E3S Web of Conferences 343, 03004, doi: 10.1051/e3sconf/202234303004, 2022 [Google Scholar]
  14. R. Krause, Ch. Friebe, R. Heidenreich: Application of Mobile Air Cleaning Devices in daily school routines, 52nd AiCARR International Conference, E3S Web of Conferences 343, 03003, doi: 10.1051/e3sconf/202234303003, 2022 [Google Scholar]
  15. W. Whyte, N. Lenegan, T. Eaton: Ensuring the air supply rate to a cleanroom complies with the EU GGMP and ISO 14644-3 recovery rate requirements. Clean Air and Containment Review vol. 26, Euromed Communications (2016), pp. 22–24 [Google Scholar]
  16. S. Norwood: Handbook of Downstream Processing. In: E. Goldberg, E. (ed.): Blackie Academic & Professional, 1997, p. 530 [Google Scholar]
  17. Ch. Friebe, R. Grüttner, K. Hackeschmidt: Verfahren und Anordnung zur Bestimmung der Luftwechselrate. Patent DE 10 2020 103 273 B3 [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.