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  • basics:building_physics_-_basics (12)
  • basics:affordability (5)
  • basics:energy_and_ecology (5)
  • basics:passive_house_-_assuring_a_sustainable_energy_supply (5)
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Are Passive Houses cost-effective? @basics:affordability:investing_in_energy_efficiency
16 Hits, Last modified: 3 years ago
e external wall insulation should be increased to 300 mm and the brickwork should be reduced to 115 mm... \\ A<sub>N</sub> according to EnEV). Each year, 1330 litres of heating oil are\\ used for heating.**//... *. It gets even better: instead of using about 13300 kWh fuel oil or natural gas, the Passive House o... a loan). The consideration period has been set as 30 years; the building components used will function
The Passive House – historical review
15 Hits, Last modified: 3 years ago
e Houses ===== {{:picopen:china_traditionell.jpg?300 }} <- ** Traditional building in Southern China.... celand ===== {{:picopen:torfrasenhaus_island.jpg?300 }} <- **Traditional turf houses in Iceland.**\\ ... ssive House (!) ===== {{:picopen:fram_nansen.jpg?300 }} <- ** Fridtjof Nansen's polar ship, the "Fram... se ===== {{:picopen:korsgaard_dth_nullenergi.jpg?300 }} <- ** The DTH zero-energy house on the campus
The Passive House in summer
12 Hits, Last modified: 4 years ago
* in the summer (more exactly: from 15th April to 30th September) the ventilation system is operated o... ent in all rooms, during very hot periods between 30th August and 8th September of the reference year, they even rise to 30 °C. **Except for a few days during this hot perio... ncrease from a level of barely **25° up to 28 and 30°C**. The surface temperatures are still somewhat
Heating load in Passive Houses @basics:building_physics_-_basics
9 Hits, Last modified: 6 years ago
a house with an average occupancy of 1 person per 30 m² of living area, the capacity available is arou... The minimum fresh air flow rate for one person is 30 m<sup>3</sup>/h (according to the DIN 1946 – heal... >K). Fresh air can only be heated by a maximum of 30 K (to 51°C) in order to avoid dust carbonisation ... capacity needed per person: \\ P<sub>pers</sub> = 30 m<sup>3</sup>/h/pers * 0.33 Wh/(m<sup>3</sup>K) *
The Passive House - definition
8 Hits, Last modified: 7 years ago
e is a building, for which thermal comfort (ISO 7730) can be achieved solely by post-heating or post-c... e good indoor air quality, one person needs about 30 m³ of fresh air per hour. This supply air can onl... a temperature of approx. 21°C (comfort, see ISO 7730). From this the heat flow can be calculated:\\ \\ |**30 m<sup>3</sup>/hr/pers * 0.33 Wh/(m<sup>3</sup>K)
Definition and effects of thermal bridges @basics:building_physics_-_basics:thermal_bridges
7 Hits, Last modified: 3 years ago
Adaptive versus Heat Balance Comfort Models @basics:building_physics_-_basics:thermal_comfort
7 Hits, Last modified: 6 years ago
They resulted in the international standard ISO 7730 which allows for the calculation of the predicted mean vote, PMV. In [ISO 7730:2006] three comfort categories are distinguished,... rgy and Buildings 34, 6 (2002) 533-536 **[ISO 7730:2006]** DIN EN ISO 7730:2006-05, Ergonomie der thermischen Umgebung – Analytische Bestimmung und
What defines thermal bridge free design? @basics:building_physics_-_basics
6 Hits, Last modified: 3 years ago
lows. \\ [{{ :picopen:envelope_passive_house.png?300|Due to thermal bridge free design, the heat loss... WRAP> [{{ :picopen:waermebrueckenfrei_marker.png?300|Cross-section: Plan the insulation layer so that
Philips Experimental House Research 1974ff: Passive versus Active Measures in Europe & America @basics:the_passive_house_-_historical_review
6 Hits, Last modified: 5 years ago
sulting heating requirement ranged between 20 and 30 kWh/m2a - i. e. more than a factor of 15 below th... Central and Northern Europe, window areas beyond 30 – 50% of the South façade do not lead to addition... nd Bestand”, Bundesbaublatt, H. 1-2, Feb. 2000, p.30 - 34, * Steinmüller, B. (1998) (ed.): Nachhal... chaftliche Strategien für den Klimaschutz, Berlin 30 Nov. 2000, publ. in KfW-Research Nr. 25, Mittelst
Local thermal comfort @basics:building_physics_-_basics:thermal_comfort
6 Hits, Last modified: 6 years ago
:picopen:3warmfenster_thermographie_mit_logo.png?300 }}|{{ :picopen:2isolierglas_thermographie_mit_logo.png?300 }}|{{ :picopen:2waermeschutzglas_thermographie_m
Thermal comfort parameters @basics:building_physics_-_basics:thermal_comfort
6 Hits, Last modified: 5 years ago
orporated into international standards (DIN ISO 7730). A large part of the information available to us... explanation of Fangers comfort research and ISO 7730]] for those interested in the scientific backgrou... ermined by Fanger’s equation, documented in ISO 7730 (see also [[phi_publications:pb_25:comfort_criter... Calculation of the PMV according to DIN EN ISO 7730|Fangers comfort equation]]). Furthermore, accordi
What is a Passive House?
4 Hits, Last modified: 3 years ago
? Click the video-frame: **{{ youtube>xLxwa-rwFP8?300| What is a passive house? Video by Dr. Wolfgang ... {{ :picopen:heating_energy_savings_diagram_e.jpg?300}} A building standard that is truly **energy ef... rgy savings – if you do it, do it right!]] (as of 30 October 2006). ==== Hands-on experience of Passi... tional standards on thermal comfort such as ISO 7730. The Passive House concept is based on a thorough
Life cycle cost analysis of energy interventions in 18 reference buildings @basics:affordability
4 Hits, Last modified: 6 years ago
{{:picopen:newco-funded-iee-horiz.jpg?300}} [[http://www.passreg.eu/|{{:picopen:logo_passreg.png?230}}]] \\ \\ ====== Life cycle cost analysis of en... 0| |Terraced house (middle), built 1975-1991|211.830,00|-33.921,00| |Terraced house (middle), built 19... | | |Portico flat, built before 1946|204.110,00|-30.323,00| **Appendix** Brochure Examplary house
Introduction - Passive House buildings in different climates @basics:passive_houses_in_different_climates
4 Hits, Last modified: 6 years ago
Superior thermal protection is affordable @basics:affordability:investing_in_energy_efficiency
4 Hits, Last modified: 6 years ago
Passive House – the next decade | Determining application-specific PER factors @basics:passive_house_-_assuring_a_sustainable_energy_supply:passive_house_the_next_decade
4 Hits, Last modified: 14 months ago
Economic feasibility of Passive House design @basics:affordability
3 Hits, Last modified: 6 years ago
Greenhouse effect and climate protection @basics:energy_and_ecology
3 Hits, Last modified: 5 years ago
Zero-energy and zero heating energy houses @basics:energy_and_ecology
3 Hits, Last modified: 6 years ago
Heated basement @basics:building_physics_-_basics:thermal_bridges:tbcalculation:examples
3 Hits, Last modified: 3 years ago
Energy efficiency – the key to future energy supply
2 Hits, Last modified: 3 years ago
Passive House and the Sustainable Development Goals (SDGs): Connecting an international building standard with global aims
2 Hits, Last modified: 4 years ago
Passive House buildings in different climates
2 Hits, Last modified: 3 years ago
Renewable primary energy demand in residential buildings with high energy intensity
2 Hits, Last modified: 5 years ago
Heat transfer @basics:building_physics_-_basics
2 Hits, Last modified: 3 years ago
Primary energy – quantifying sustainability @basics:energy_and_ecology
2 Hits, Last modified: 5 years ago
Renewable sources of energy @basics:energy_and_ecology
2 Hits, Last modified: 6 years ago
Passive House – On-grid or Off-grid? @basics:passive_house_-_assuring_a_sustainable_energy_supply
2 Hits, Last modified: 5 years ago
Passive House – the next decade @basics:passive_house_-_assuring_a_sustainable_energy_supply
2 Hits, Last modified: 14 months ago
Renewable primary energy demand in residential buildings with high energy intensity @basics:passive_house_-_assuring_a_sustainable_energy_supply
2 Hits, Last modified: 5 years ago
Economy and financing of efficiency: new buildings, renovation and step by step retrofit @basics:affordability:investing_in_energy_efficiency
2 Hits, Last modified: 6 years ago
Thermal Bridges Catalogue @basics:building_physics_-_basics:thermal_bridges
2 Hits, Last modified: 10 months ago
Basic principle for calculating thermal bridges @basics:building_physics_-_basics:thermal_bridges:tbcalculation
2 Hits, Last modified: 3 years ago
Exterior wall on floor slab @basics:building_physics_-_basics:thermal_bridges:tbcalculation:examples
2 Hits, Last modified: 3 years ago
Unheated basement @basics:building_physics_-_basics:thermal_bridges:tbcalculation:examples
2 Hits, Last modified: 3 years ago
Internal heat capacity
1 Hits, Last modified: 3 years ago
Passive House - Assuring a sustainable energy supply
1 Hits, Last modified: 14 months ago
Life Cycle energy balances, Embodied energy and the Passive House Standard @basics:energy_and_ecology
1 Hits, Last modified: 4 years ago
Efficiency of household appliances and their impact on the primary energy demand of residential buildings @basics:passive_house_-_assuring_a_sustainable_energy_supply
1 Hits, Last modified: 5 years ago
Passive Houses in hot, humid climates @basics:passive_houses_in_different_climates
1 Hits, Last modified: 7 years ago

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