Open Access
Issue |
E3S Web Conf.
Volume 111, 2019
CLIMA 2019 Congress
|
|
---|---|---|
Article Number | 04049 | |
Number of page(s) | 6 | |
Section | High Energy Performance and Sustainable Buildings, Simulation models and predictive tools for the buildings HVAC, IEQ and energy | |
DOI | https://doi.org/10.1051/e3sconf/201911104049 | |
Published online | 13 August 2019 |
- Kosonen, R., Lastovets, N., Mustakallio, P., da Graça, G. C., Mateus, N. M., & Rosenqvist, M. (2016). The effect of typical buoyant flow elements and heat load combinations on room air tempera-ture profile with displacement ventilation. Building and Environment, 108, 207–219. [Google Scholar]
- Fraisse, G., Viardot, C., Lafabrie, O., & Achard, G. (2002). Development of a simplified and accurate building model based on electrical analogy. Energy and buildings, 34 (10), 1017–1031. [CrossRef] [Google Scholar]
- Gouda, M. M., Danaher, S., & Underwood, C. P. (2002). Building thermal model reduction using nonlinear constrained optimization. Building and environment, 37 (12), 1255–1265. [CrossRef] [Google Scholar]
- Sirén Kai (2016). Course material: A simple model for the dynamic computation of building heating and cooling demand. Espoo, Finland: Aalto University [Google Scholar]
- Lastovets, N., Kosonen, R., Mustakallio, P., Joki-salo, J., & Li, A. (2019). Modelling of room air tem-perature profile with displacement ventilation. Inter-national Journal of Ventilation, 1-15. [Google Scholar]
- Mateus, N. M., & da Graça, G. C. (2015). A vali-dated three-node model for displacement ventila-tion. Building and Environment, 84, 50–59 [CrossRef] [Google Scholar]
- Mäki A. (2018). Demand response of space heating using model predictive control in an office building. Doctoral thesis. Espoo, Finland: Aalto University. [Google Scholar]
- Shalin, P. (1996). Modelling and simulation meth-ods for modular continuous system in buildings. PhD Thesis. Royal Institute of Technology (KTH), Stockholm, Sweden. [Google Scholar]
- Björsell, N., Bring, A., Eriksson, L., Grozman, P., Lindgren, M., Sahlin, P., Shapovalov, A. and Vuolle, M. (1999). IDA indoor climate and energy. In Proc. of the 6-th IBPSA Conference (pp. 1035-1042). [Google Scholar]
- Jokisalo, J., Kalamees, T., Kurnitski, J., Eskola, L., Jokiranta, K., & Vinha, J. (2008). A comparison of measured and simulated air pressure conditions of a detached house in a cold climate. Journal of Build-ing Physics, 32 (1), 67–89. [CrossRef] [Google Scholar]
- Zweifel, G., & Achermann, M. (2003). RADTEST–the extension of program validation towards radiant heating and cooling. Building Simulation ‘03, Eind-hoven, Netherlands, 1505–1511. [Google Scholar]
- Kropf, S., & Zweifel, G. (2001). Validation of the Building Simulation Program IDA-ICE According to CEN 13791 “Thermal Performance of Buildings–Calculation of Internal Temperatures of a Room in Summer Without Mechanical Cooling–General Cri-teria and Validation Procedures”. Hochschule Technik+ Architektur Luzern. HLK Engineering [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.