Calculation of thermal bridges in (Nordic) building envelopes - Risk of performance failure due to inconsistent use of methodology

Reduction of energy use in buildings is an important measure to achieve climate change mitigation. It is essential to minimize heat losses when designing and building energy efficient buildings. For an energy-efficient building in a cold climate, a large part of the space heating demand is caused by transmission losses through the building envelope. Therefore, calculations of these must be carried out in a correct way to ensure a properly sized heating system and a good indoor climate. There is today a risk of misunderstanding and inconsistent use of methodology when transmission heat transfer is calculated. To investigate the state of knowledge among Swedish consultants a survey was conducted regarding thermal bridges and calculations of transmission heat transfer. Furthermore, the impact of thermal bridges was studied by comparative calculations for a case study building with different building systems and different amounts of insulation. The study shows that the relevant standards and the building code in Sweden are interpreted in many different ways regarding calculation of transmission heat transfer and energy performance. There is a lack of understanding regarding the impact of different measuring methods on thermal bridges. When more insulation is used the relative impact of thermal bridges increases. It is therefore not suitable to use a single predefined percentage factor, increasing the transmission heat transfer through building elements, to account for the effect of thermal bridges. If values for normalized thermal bridges are to be used, they need to be differentiated by building system and different amounts of insulation (C) 2013 Elsevier B.V. All rights reserved. (Less)

[1]  Shinsuke Kato,et al.  State-of-the-art Review : Vol. 2B. Methods and Tools for Designing Integrated Building Concepts: NNEX 44 : Integrating Environmentally Responsive Elements in Buildings , 2008 .

[2]  Yi Jiang,et al.  Dynamical building simulation: A low order model for thermal bridges losses , 2008 .

[3]  J. M. Sala,et al.  Equivalent wall method for dynamic characterisation of thermal bridges , 2012 .

[4]  I. Simões,et al.  Simulation of dynamic linear thermal bridges using a boundary element method model in the frequency , 2011 .

[5]  Andre Omer Desjarlais,et al.  Influence of Architectural Details on the Overall Thermal Performance of Residential Wall Systems , 1994 .

[6]  Vítor Leal,et al.  A methodology for economic efficient design of Net Zero Energy Buildings , 2012 .

[7]  R. Ricciu,et al.  Economic efficiency of social housing thermal upgrade in Mediterranean climate , 2013 .

[8]  Andrea Gasparella,et al.  Analysis of the influence of installation thermal bridges on windows performance: The case of clay b , 2011 .

[9]  Jorge S. Carlos,et al.  A simple methodology to predict heating load at an early design stage of dwellings , 2012 .

[10]  Targo Kalamees,et al.  Cost optimal and nearly zero (nZEB) energy performance calculations for residential buildings with R , 2011 .

[11]  A. Campos-Celador,et al.  Analysis of a thermal bridge in a guarded hot box testing facility , 2012 .

[12]  A. Ben Larbi Statistical modelling of heat transfer for thermal bridges of buildings , 2005 .

[13]  Kevan A. C. Martin,et al.  Problems in the calculation of thermal bridges in dynamic conditions , 2011 .

[14]  Gudni Jóhannesson,et al.  Dynamic calculation of thermal bridges , 1997 .

[15]  Hua Ge,et al.  Impact of balcony thermal bridges on the overall thermal performance of multi-unit residential buildings: A case study , 2013 .

[16]  Van Straaten,et al.  Thermal Performance of Buildings , 1967 .

[17]  Jean-Jacques Roux,et al.  Effect of 2D modelling of thermal bridges on the energy performance of buildings: Numerical application on the Matisse apartment , 2001 .

[18]  Theodoros Theodosiou,et al.  The impact of thermal bridges on the energy demand of buildings with double brick wall constructions , 2008 .

[19]  Björn Berggren,et al.  Thermal bridges in passive houses and nearly zero-energy buildings , 2011 .

[20]  François Garde,et al.  FORMULATING A BUILDING CLIMATE CLASSIFICATION METHOD , 2011 .

[21]  L. Marletta,et al.  Energy and cost evaluation of thermal bridge correction in Mediterranean climate , 2011 .