Hygric properties of porous building materials (VI): A round robin campaign
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N. Ramos | D. Gawin | Lixin Sun | C. Hall | K. K. Hansen | Jian-hua Zhao | J. Grunewald | Chi Feng | Hans Janssen | A. S. Guimarães | Z. Pavlík | A. Hamilton | M. Fredriksson | P. Konca | H. Hirsch | H. Janssen
[1] J. Carmeliet,et al. Assessment of risk of freeze-thaw damage in internally insulated masonry in a changing climate , 2020 .
[2] E. E. Thybring,et al. On sorption hysteresis in wood: Separating hysteresis in cell wall water and capillary water in the full moisture range , 2019, PloS one.
[3] S. Roels,et al. Towards a more representative assessment of frost damage to porous building materials , 2019, Building and Environment.
[4] Hans Janssen,et al. Pore-Structure-Based Determination of Unsaturated Hygric Properties of Porous Materials , 2019, Transport in Porous Media.
[5] R. Černý,et al. Thermal and hygric properties of biomaterials suitable for interior thermal insulation systems in historical and traditional buildings , 2019, Building and Environment.
[6] Chi Feng,et al. Hygric properties of porous building materials (IV): Semi-permeable membrane and psychrometer methods for measuring moisture storage curves , 2019, Building and Environment.
[7] Yue Wu,et al. Analysis of moisture buffering effect of straw-based board in civil defence shelters by field measurements and numerical simulations , 2018, Building and Environment.
[8] Hl Henk Schellen,et al. Applying internal insulation in post-war prefab housing: Understanding and mitigating the hygrothermal risks , 2018, Building and Environment.
[9] Hans Janssen,et al. Implementation and validation of a 3D image-based prediction model for the thermal conductivity of cellular and granular porous building blocks , 2018, Construction and Building Materials.
[10] Dominique Derome,et al. Influence of envelope properties on interior insulation solutions for masonry walls , 2018 .
[11] Chi Feng,et al. Hygric properties of porous building materials (III): Impact factors and data processing methods of the capillary absorption test , 2018 .
[12] C. Hall,et al. Beyond the sorptivity: definition, measurement and properties of the secondary sorptivity , 2018 .
[13] N. Scarlett,et al. Effect of microabsorption on the determination of amorphous content via powder X-ray diffraction , 2018, Powder Diffraction.
[14] Chi Feng,et al. Impact of time and personnel on measurements of the hygric properties of building materials , 2017 .
[15] I. Ioannou,et al. The temperature variation of the water sorptivity of construction materials , 2017 .
[16] Chi Feng,et al. The influence of temperature on the capillary absorption coefficient-a confrontation of two recent papers in building and environment , 2017 .
[17] K. Hasegawa,et al. Practical moisture buffering effect of three hygroscopic materials in real-world conditions , 2017 .
[18] Chi Feng,et al. Hygric properties of porous building materials (II): Analysis of temperature influence , 2016 .
[19] P. Johansson,et al. A Method for Determination of Absorption Isotherms at High Relative Humidity Levels: Measurements on Lime-Silica Brick and Norway Spruce (Picea abies (L.) Karst.) , 2016 .
[20] C. Hall,et al. Porosities of building limestones: using the solid density to assess data quality , 2016 .
[21] C. Hall,et al. Porosity–density relations in stone and brick materials , 2015 .
[22] Q. Meng,et al. Hygric properties of porous building materials: Analysis of measurement repeatability and reproducibility , 2015 .
[23] C. Hall,et al. Erratum: The mechanics of moisture-expansion cracking in fired-clay ceramics , 2013 .
[24] Prabal Talukdar,et al. Reliability of material data measurements for hygroscopic buffering , 2010 .
[25] H. Hens. Modeling the Heat, Air, and Moisture Response of Building Envelopes: What Material Properties are Needed, How Trustful Are the Predictions? , 2007 .
[26] Mark Bomberg,et al. Analysis of Selected Water Absorption Coefficient Measurements , 2005 .
[27] Jan Carmeliet,et al. Determination of Liquid Water Transfer Properties of Porous Building Materials and Development of Numerical Assessment Methods: Introduction to the EC HAMSTAD Project , 2004 .
[28] Sidney Diamond,et al. Mercury porosimetry: An inappropriate method for the measurement of pore size distributions in cement-based materials , 2000 .
[29] G. H. Galbraith,et al. Vapour permeability: Suitability and consistency of current test procedures , 1993 .
[30] G. H. Galbraith,et al. The comparability of water vapour permeability measurements: Investigation assessing comparability of measured vapour permeability values obtained from range of laboratories throughout European community , 1992 .
[31] R. Mikhail,et al. The contact angle in mercury intrusion porosimetry , 1981 .
[32] Sivert Uvsløkk,et al. Intercomparison on measurement of water vapour permeance. Nordtest – project agreement 1529-01 , 2003 .
[33] Morten Hjorslev Hansen,et al. Retention curves measured using pressure plate and pressure membrane apparatus: Description of method and interlaboratory comparison , 1998 .