Measuring the thermal energy performance gap of labelled residential buildings in Switzerland

被引:59
|
作者
Cozza, Stefano [1 ]
Chambers, Jonathan [1 ]
Patel, Martin K. [1 ]
机构
[1] Univ Geneva, Inst Environm Sci, Chair Energy Efficiency, Geneva, Switzerland
关键词
Energy performance gap; Energy label; Actual consumption; Environmental policy target; EMPIRICAL-EVIDENCE; OCCUPANT BEHAVIOR; LIFE-CYCLE; CONSUMPTION; DWELLINGS; CLIMATE; UNCERTAINTY; RENOVATION; FRAMEWORK; SAVINGS;
D O I
10.1016/j.enpol.2019.111085
中图分类号
F [经济];
学科分类号
02 ;
摘要
This paper addresses the thermal Energy Performance Gap (EPG), defined as the difference between a building's theoretical and actual energy consumption for thermal purposes (heating and hot water). Successful energy policies require estimates of the energy saving potential of the building stock. It is the objective of this work to analyse whether and to what extent an EPG exists in residential buildings in Switzerland. The database of the Swiss Cantonal Energy Certificate for Buildings was used, covering over 50 000 buildings. The median EPG was found to be -11% (i.e. actual consumption lower than theoretical) but varied across ratings from 12.4% (B-label) to -40.4% (G-label). Buildings with low energy ratings tend to consume significantly less than expected, while buildings with high rating tend to consume slightly more than expected. For the A-labels buildings (0.5% of the total) an EPG of -6.2% was found, suggesting that the very high-performance buildings may be more robust to the EPG. Simplified scenarios to illustrate the impact of this EPG on total consumption are presented, which highlight the challenge of meeting the Swiss Energy Strategy 2050 with a realistic renovation rate. The importance of low carbon heat supply for buildings is also discussed.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Research on improving the energy performance of residential buildings
    Kazaz, Aynur
    Yetim, Ender
    JOURNAL OF CONSTRUCTION ENGINEERING MANAGEMENT & INNOVATION, 2024, 7 (04): : 310 - 335
  • [22] Energy performance of evacuated glazings in residential buildings
    Sullivan, Robert
    Arasteh, Dariush K.
    Beck, Fredric A.
    Selkowitz, Stephen E.
    ASHRAE Transactions, 1996, 102 (02): : 220 - 227
  • [23] Impact of shape on residential buildings energy performance
    Pappas, Alexandra
    Loew, Eric
    Scotland-Stewart, Tim
    Krarti, Moncef
    Solar Engineering 2005, 2006, : 105 - 111
  • [24] ENERGY PERFORMANCE ASPECTS OF RESIDENTIAL BUILDINGS IN LATVIA
    Kundzina, A.
    Geipele, I.
    Auders, M.
    Lapuke, S.
    LATVIAN JOURNAL OF PHYSICS AND TECHNICAL SCIENCES, 2023, 60 (01) : 39 - 51
  • [25] Energy performance enhancement in multistory residential buildings
    Hachem, Caroline
    Athienitis, Andreas
    Fazio, Paul
    APPLIED ENERGY, 2014, 116 : 9 - 19
  • [26] Energy performance of evacuated glazings in residential buildings
    Sullivan, R
    Arasteh, DK
    Beck, FA
    Selkowitz, SE
    ASHRAE TRANSACTIONS 1996, VOL 102, PT 2, 1996, 102 : 220 - 227
  • [27] Energy performance of window system in residential buildings
    Yu, Jinghua
    Yang, Changzhi
    Tian, Liwei
    Liao, Dan
    FIRST INTERNATIONAL CONFERENCE ON BUILDING ENERGY AND ENVIRONMENT, PROCEEDINGS VOLS 1-3, 2008, : 200 - 207
  • [28] Estimating thermal performance and energy saving potential of residential buildings using utility bills
    Park, J. S.
    Lee, Suk Joo
    Kim, Kee Han
    Kwon, Kyung Woo
    Jeong, Jae-Weon
    ENERGY AND BUILDINGS, 2016, 110 : 23 - 30
  • [29] Thermal performance optimization of envelope in the energy-saving renovation of existing residential buildings
    Huang, Jianen
    Wang, Shasha
    Teng, Feihong
    Feng, Wei
    ENERGY AND BUILDINGS, 2021, 247
  • [30] RETRACTION: Integrative soft computing approaches for optimizing thermal energy performance in residential buildings
    Peng, Y.
    Chen, Y.
    PLOS ONE, 2024, 19 (11):