Open Access
Issue |
E3S Web Conf.
Volume 111, 2019
CLIMA 2019 Congress
|
|
---|---|---|
Article Number | 04018 | |
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/201911104018 | |
Published online | 13 August 2019 |
- Filippidou, F., N. Nieboer, and H. Visscher, Effectiveness of energy renovations: a reassessment based on actual consumption savings. Energy Efficiency: p. 1-17. [Google Scholar]
- Ioannou, A. and L. Itard, Energy performance and comfort in residential buildings: Sensitivity for building parameters and occupancy. Energy and Buildings, 2015. 92: p. 216–233. [Google Scholar]
- Majcen, D., L. Itard, and H. Visscher, Actual and theoretical gas consumption in Dutch dwellings: What causes the differences? Energy Policy, 2013. 61: p. 460–471. [Google Scholar]
- van den Brom, P., A. Meijer, and H. Visscher, Performance gaps in energy consumption: household groups and building characteristics. Building Research & Information, 2018. 46(1): p. 54–70. [CrossRef] [Google Scholar]
- Deconinck, A.-H. and S. Roels, Is stochastic grey-box modelling suited for physical properties estimation of building components from on-site measurements? Journal of Building Physics, 2017. 40(5): p. 444-471. [CrossRef] [Google Scholar]
- ISO, B., 6946: 2007 Building components and building elements—Thermal resistance and thermal transmittance—Calculation method. 1923, British Board of Agrémenttel. [Google Scholar]
- Deconinck, A.-H. and S. Roels, Comparison of characterisation methods determining the thermal resistance of building components from onsite measurements. Energy and Buildings, 2016. 130: p. 309–320. [Google Scholar]
- Sala, J.M., A. Urresti, K. Martín, I. Flores, and A. Apaolaza, Static and dynamic thermal characterisation of a hollow brick wall: Tests and numerical analysis. Energy and Buildings, 2008. 40(8): p. 1513–1520. [CrossRef] [Google Scholar]
- Martín, K., I. Flores, C. Escudero, A. Apaolaza, and J.M. Sala, Methodology for the calculation of response factors through experimental tests and validation with simulation. Energy and Buildings, 2010. 42(4): p. 461–467. [CrossRef] [Google Scholar]
- ASTM, C., 1046-95 (Reapproved 2001): Standard practice for in-situ measurement of heat flux and temperature on building envelope components. Annual Book of ASTM Standards, 2001. 4. [Google Scholar]
- ASTM, C., 1155-95 (Reapproved 2001): Standard practice for determining thermal resistance of building envelope components from the in-situ data. Annual Book of ASTM Standards, 2001. 4. [Google Scholar]
- ISO, I., 9869: Thermal insulation—Building elements—In-situ measurements of thermal resistance and thermal transmittance. International Organization for Standardization, Geneva, 2014. [Google Scholar]
- Ahmad, A., M. Maslehuddin, and L.M. Al-Hadhrami, In situ measurement of thermal transmittance and thermal resistance of hollow reinforced precast concrete walls. Energy and Buildings, 2014. 84: p. 132–141. [CrossRef] [Google Scholar]
- Rasooli, A. and L. Itard, In-situ characterization of walls’ thermal resistance: An extension to the ISO 9869 standard method. Energy and Buildings, 2018. 179: p. 374–383. [CrossRef] [Google Scholar]
- Flood, C., L. Scott, and C. Architects, In Situ Thermal Transmittance of Case Studies in Dublin. 2016. [Google Scholar]
- Rasooli, A., L. Itard, and C.I. Ferreira, A response factor-based method for the rapid in-situ determination of wall’s thermal resistance in existing buildings. Energy and Buildings, 2016. 119: p. 51–61. [CrossRef] [Google Scholar]
- Rasooli, A., L. Itard, and C.I. Ferreira, Rapid, transient, in-situ determination of wall’s thermal transmittance. REHVA European HVAC Journal, 2016. 53: p. 16–20. [Google Scholar]
- G. Mitalas, D.G.S., Room thermal response factors. ASHRAE Transactions, 1967. 73 (1) (1967): p. 1-10. [Google Scholar]
- Kossecka, E. and J. Kosny, Three-dimensional conduction z-transfer function coefficients determined from the response factors. Energy and Buildings, 2005. 37(4): p. 301–310. [Google Scholar]
- COMSOL Multiphysics® v. 5.3.a www.comsol.com. COMSOL AB, S., Sweden. [Google Scholar]
- Stewart, D.B., Time-domain transient thermal response of structural elements. Building and Environment, 1981. 16(2): p. 87–91. [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.