This document specifies the model components  to be used in a numerical hygrothermal simulation model for calculating the transient transfer of heat and moisture through building structures.
This document specifes a method to be used for validating a numeric hygrothermal simulation model claiming conformity with this ocument.

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This document specifies two alternative methods for determining hygroscopic sorption properties of
porous building materials and products:
a) using desiccators and weighing cups (desiccator method);
b) using a climatic chamber (climatic chamber method).
The desiccator method is the reference method.
This document does not specify the method for sampling.
The methods specified in this document can be used to determine the moisture content of a sample in
equilibrium with air at a specific temperature and humidity.

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This document specifies a method based on cup tests for determining the water vapour permeance of
building products and the water vapour permeability of building materials under isothermal conditions.
Different sets of test conditions are specified.
The general principles are applicable to all hygroscopic and non-hygroscopic building materials and
products, including insulation materials and including those with facings and integral skins. Annexes
give details of test methods suitable for different material types.
The results obtained by this method are suitable for design purposes, production control and for
inclusion in product specifications.

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ISO 13788:2012 gives simplified calculation methods for:
      The internal surface temperature of a building component or building element below which mould growth is likely, given the internal temperature and relative humidity. The method can also be used to assess the risk of other internal surface condensation problems.
      The assessment of the risk of interstitial condensation due to water vapour diffusion. The method used does not take account of a number of important physical phenomena including the variation of material properties with moisture content; capillary suction and liquid moisture transfer within materials; air movement from within the building into the component through gaps or within air spaces; the hygroscopic moisture capacity of materials.
      The time taken for water, from any source, in a layer between two high vapour resistance layers to dry out and the risk of interstitial condensation occurring elsewhere in the component during the drying process.

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This International Standard gives simplified calculation methods for: a) The internal surface temperature of a building component or building element below which mould growth is likely, given the internal temperature and relative humidity. The method can also be used to assess the risk of other internal surface condensation problems. b) The assessment of the risk of interstitial condensation due to water vapour diffusion. The method used does not take account of a number of important physical phenomena including: - the variation of material properties with moisture content; - capillary suction and liquid moisture transfer within materials; - air movement from within the building into the component through gaps or within air spaces; - the hygroscopic moisture capacity of materials. Consequently, the method is applicable only where the effects of these phenomena can be considered to be negligible. c) The time taken for water, from any source, in a layer between two high vapour resistance layers to dry out and the risk of interstitial condensation occurring elsewhere in the component during the drying process.

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This standard discribes principles of waterproofing of buildings. It contains definition and a table in which waterproofing types are assigned to the kind of water straining and the kind of soil.

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This standard specifies the requirements of waterproofings of buildings against groundmoisture. Part 4 gives details about the design and execution of waterproofings.

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This standard specifies the requirements of the waterproofing of buildings. Part 3 contains the description of the processing of the materials.

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This standard specifies the requirements of water-proofing of buildings. Part 6 gives details about the design and execution of water-proofings against outside pressing water.

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This standard is applicable in connection with waterproofing against - ground moisture according to DIN 18195-4 - non-pressing water according to DIN 18195-5 and - outside pressing water according to DIN 18195-6 used in penetrations, transitions and seals. This standard is not applicable to waterproof coverings for roofs or decks of bridges on public highways (see also DIN 18195-1).

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This standard specifies the requirements of water-proofing of buildings. Part 5 gives details about the design and execution of water-proofings against non-pressing water.

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This standard specifies rules for the execution of permanent protective layers for water-proofings against - ground moisture according to DIN 18195-4 - non-pressing water according to DIN 18195-5 and - outside pressing water according to DIN 18195-6 and states the protective measures which have to be taken to avoid damages of the water-proofing during the construction time.

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This standard is applicable in connection with waterproofing against - ground moisture according to DIN 18195-4 - non-pressing water according to DIN 18195-5 and - outside pressing water according to DIN 18195-6 for waterproofing of movement joints in structures.

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2011-02-08 EMA: // final draft received in ISO/CS (see notification from 2011-02-07 in dataservice).
MINOR AMENDMENT!!!     MINOR AMENDMENT!!!     MINOR AMENDMENT!!!     MINOR AMENDMENT!!!

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  • Amendment
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This draft European Standard specifies a method of test to determine the resistance of pitched roof coverings to wind-driven rain. The test method is applicable to discontinuously laid unsealed small roof covering elements such as clay tiles, concrete tiles, slates, fibre cement slates and shingles.

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This Technical Report describes a method of test for determining the resistance of pitched roof coverings to wind-driven and deluge rain.
The test method is applicable to discontinuously laid unsealed small roof covering elements such as clay tiles, concrete tiles, slates, fibre cement slates and stones.
NOTE   The test method may be adapted for fittings.

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This standard specifies the definition, method of calculation and method of presentation of winter external design temperatures, used in determining the maximum heat requirements for space heating in buildings. This is linked to a measure of wind speed, for locations where low temperatures occur in conjunction with windy conditions.

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  • Amendment
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This standard specifies the requirements of materials which are to be used for waterproofings of buildings.

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This standard deals with the waterproofing of structures by means of bitumious materials, metal strips and synthetic waterproofing sheats to prevent leakage of water pressing from the inside, i. e. water exerting hydrostatic pressure on the waterproog seal from inside, such as in drinking water tanks, reservoirs, swimming pools and stormwater retention tanks. This standard does not deal with seals for earthworks or for protection against chemicals.

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ISO 15927-5:2004 specifies the definition, method of calculation and method of presentation of the climatic data to be used in determining the design heat load for space heating in buildings. These include the winter external design air temperatures and the relevant wind speed and direction, where appropriate.
Heat loss through the ground, which also contributes to the heat load for buildings, depends on longer-term temperature changes; methods for calculating ground heat loss are given in ISO 13370.

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  • Standard
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This standard specifies the definition, method of calculation and method of presentation of winter external design temperatures, used in determining the maximum heat requirements for space heating in buildings. This is linked to a measure of wind speed, for locations where low temperatures occur in conjunction with windy conditions.

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  • Standard
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This standard specifies a method for determining, by partial immersion with no temperature gradient, the short-term liquid water absorption coefficient. It is intended to assess the rate of absorption of water, by capillary action from continuous or driving rain during on site storage or construction, by insulating and other materials, which are normally protected. The method is suitable for renders or coatings tested in conjunction with the substrate on which they are normally mounted.
It is not intended to assess the absorption of water by materials used under water or in overall contact with saturated ground, where a total immersion test is more appropriate.

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ISO 15927-1:2003 specifies procedures for calculating and presenting the monthly means of those parameters of climatic data needed to assess some aspects of the thermal and moisture performance of buildings. Numerical values for any locations should be obtained from the meteorological service in the relevant country.
ISO 15927-1:2003 covers the following single climate variables: air temperature; atmospheric humidity; wind speed; precipitation; solar radiation; longwave radiation.
Meteorological instrumentation and methods of observation are not covered; these are specified by the World Meteorological Organisation (WMO).

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  • Standard
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This standard specifies a general method for assessing the driving rain resistance of wall systems through determining the water tightness of wall systems under pulsating air pressure.

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This standard specifies a general method for assessing the driving rain resistance of wall systems through determining the water tightness of wall systems under pulsating air pressure.

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This standard specifies the equations to be used in a simulation method for calculating the non steady transfer of heat and moisture through building structures.  
It also provides a benchmark example intended to be used for validating a simulation method claiming conformity with this standard, together with the allowed tolerances.
The equations in this standard take account of the following storage and one-dimensional transport phenomena:
-   heat storage in dry building materials and absorbed water;
-   heat transport by moisture-dependent thermal conduction;
-   latent heat transfer by vapour diffusion;
-   moisture storage by vapour sorption and capillary forces;
-   moisture transport by vapour diffusion;
-   moisture transport by liquid transport (surface diffusion and capillary flow).
The equations described in this standard account for the following climatic variables:
-   internal and external temperature;
-   internal and external humidity;
-   solar and longwave radiation;
-   precipitation (normal and driving rain);
-   wind speed and direction.
The hygrothermal equations described in this standard shall not be applied in cases where:
-   convection takes place through holes and cracks;
-   two-dimensional effects play an important part (e.g. rising damp, conditions around thermal bridges, effect of gravitational forces);
•   hydraulic, osmotic, electrophoretic forces are present;
daily mean temperatures in the component exceed 50 °C.

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This International Standard specifies two alternative methods for determining hygroscopic sorption properties of porous building materials and products: a) using desiccators and weighing cups (desiccator method); b) using a climatic chamber (climatic chamber method). The desiccator method is the reference method. This International Standard does not specify the method for sampling. The methods specified in this International Standard can be used to determine the moisture content of a sample in equilibrium with air at a specific temperature and humidity.

  • Standard
    25 pages
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This standard specifies a method based on cup tests for determining the water vapour permeance of building products and the water vapour permeability of building materials under isothermal conditions.  Different sets of test conditions are specified.
The general principles are applicable to all hygroscopic and non hygroscopic building materials and products, including those with facings and integral skins.  Annexes give details of test methods suitable for different material types.  This standard is not applicable in the case of test specimens with water vapour diffusion-equivalent air layer thickness values less than 0,1 m, as a result of increasing uncertainty in the measurement results.  If the measured water vapour diffusion-equivalent air layer thickness is greater than 1500 m the material can be considered impermeable.
The results obtained by this method are suitable for design purposes, production control and for inclusion in product specifications.

  • Standard
    32 pages
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This Standard specifies two alternative methods for determining hygroscopic sorption properties of porous building materials and products: a) using desiccators and weighing cups (desiccator method); b) using a climatic chamber (climatic chamber method). The desiccator method is the reference method. The standard does not specify the method for sampling.

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  • Standard + National Annex and/or Foreword
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This standard gives calculation methods for:
a)   The internal surface temperature of a building component or building element below which mould growth is likely, given the internal temperature and relative humidity - the method can also be used to assess the risk of other surface condensation problems.
b) The assessment of the risk of interstitial condensation due to water vapour diffusion. The method used assumes built-in water has dried out and does not take account of a number of important physical phenomena including:
- the dependence of thermal conductivity on moisture content;
- the release and absorption of latent heat;
- the variation of material properties with moisture content;
- capillary suction and liquid moisture transfer within materials;
- air movement through cracks or within air spaces;
- the hygroscopic moisture capacity of materials.
Consequently the method is applicable only to structures where these effects are negligible.

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The document specifies the requirements on  waterproofings of buildings against  groundmoisture. It gives details about the design  and execution of waterproofings.

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This standard specifies rules for the execution of  permanent protective layers for water-proofings  against ground moisture according to DIN 18195-4,  non-pressing water according to DIN 18195-5 and  outside pressing water according to DIN 18195-6  and states the protective measures which have to  be taken to avoid damages of the water-proofing  during the construction time.

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The document specifies the requirements on  waterproofing of buildings. It gives details about the  design and execution of waterproofings against  non-pressing water.

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The document specifies the requirements of the  waterproofing of buildings. It contains the  description of the processing of the materials.

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The document specifies principles of  waterproofings of buildings. It contains definitions  and a table in which waterproofing types are  assigned to the kind of water straining and the kind  of soil.

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This standard is applicable in connection with  waterproofing against - ground moisture according  to DIN 18195-4 - non-pressing water according to  DIN 18195-5 and - outside pressing water  according to DIN 18195-6 used in penetrations,  transitions and seals. This standard is not  applicable to waterproof coverings for roofs or  decks of bridges on public highways (see also DIN  18195-1).

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The document specifies the requirements on  waterproofing of buildings. It gives details about the  design and execution of waterproofings against  outside pressing water.

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This standard is applicable in connection with  waterproofing against - ground moisture according  to DIN 18195-4 - non-pressing water according to  DIN 18195-5 and - outside pressing water  according to DIN 18195-6 for waterproofing of  movement joints in structures.

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The document specifies the requirements of  materials which are to be used for waterproofings  of buildings.

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