Reduction of the Energy Demand With Passive Approaches in Multifamily Nearly Zero-Energy Buildings Under Different Climate Conditions

被引:18
|
作者
Elnagar, Essam [1 ,2 ]
Koehler, Benjamin [2 ]
机构
[1] Univ Liege, Dept Aerosp & Mech Engn, Thermodynam Lab, Energy Syst Res Unit, Liege, Belgium
[2] Fraunhofer Inst Solar Energy Syst ISE, Dept Energy Efficient Bldg, Freiburg, Germany
基金
欧盟地平线“2020”;
关键词
nearly zero-energy building; energy demand; passive technologies; energy savings; building optimization; COOLING CONCEPTS; VENTILATION;
D O I
10.3389/fenrg.2020.545272
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Nearly zero-energy buildings (nZEBs) will be the standard in Europe in the future. How nZEBs are defined and therefore designed varies amongst Europe due to different national definitions/legislations. Furthermore, finding the optimal building design and technology sets for nZEBs under different boundary conditions (climate, availability of renewable energy sources on-site etc.) and for different building types (residential, non-residential) is still a challenge. Many studies in the field focus on active technologies and renewable energies in buildings. However, the effects of passive approaches on energy consumption are not quantified. This paper therefore focuses on the quantification of the effects of passive design approaches/technologies to improve the energy performance of buildings. Passive approaches are the basis for finding optimal nZEB technology sets. Technology sets are combinations of different types of technologies in nZEBs for both the satisfaction of energy needs and thermal comfort requirements. In this paper different passive approaches for already realized buildings in different European countries with different climate conditions [Stuttgart (Germany), Kiruna (Sweden) and Palermo (Italy)] are demonstrated. Even though several technologies are available to achieve nZEBs, applying and combining these technologies in an optimal way is still a challenge. Furthermore, higher initial investment costs for nZEBs are an obstacle for the market acceleration of nZEBs. Hence finding the best trade-off amongst the different goals, optimizing the most promising passive approaches that can be applied is a central part of the solution.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Innovative Photovoltaic Technologies Aiming to Design Zero-Energy Buildings in Different Climate Conditions
    Mitsopoulos, Georgios
    Kapsalis, Vasileios
    Tolis, Athanasios
    Karamanis, Dimitrios
    [J]. Applied Sciences (Switzerland), 2024, 14 (19):
  • [2] How to achieve Nearly zero-energy buildings standard
    Milovanovic, Bojan
    Bagaric, Marina
    [J]. GRADEVINAR, 2020, 72 (08): : 703 - 720
  • [3] Certification of "Nearly Zero-Energy Buildings" as a Part of Sustainability
    Fedorczak-Cisak, M.
    Furtak, M.
    Radziszewska-Zielina, E.
    [J]. INTERNATIONAL SCIENTIFIC CONFERENCE PEOPLE, BUILDINGS AND ENVIRONMENT 2018 (PBE), 2019, 222
  • [4] Recycled aggregate concrete for nearly zero-energy buildings
    Pecur, Ivana Banjad
    Stirmer, Nina
    Milovanovic, Bojan
    [J]. MAGAZINE OF CONCRETE RESEARCH, 2015, 67 (11) : 575 - 584
  • [5] Analysis and optimization of external venetian blind shading for nearly zero-energy buildings in different climate regions of China
    Huo, Huimin
    Xu, Wei
    Li, Angui
    Lv, Yanjie
    Liu, Changping
    [J]. SOLAR ENERGY, 2021, 223 : 54 - 71
  • [6] Life cycle cost reduction and market acceleration for new nearly zero-energy buildings
    Weiss, T.
    Pernetti, R.
    Garzia, F.
    Koehler, B.
    Stobbe, M.
    Meier, K.
    Berggren, B.
    [J]. SUSTAINABLE BUILT ENVIRONMENT D-A-CH CONFERENCE 2019 (SBE19 GRAZ), 2019, 323
  • [7] Risk of Fungal Growth in Nearly Zero-Energy Buildings (nZEB)
    Carpino, Cristina
    Loukou, Evangelia
    Austin, Miguel Chen
    Andersen, Birgitte
    Mora, Dafni
    Arcuri, Natale
    [J]. BUILDINGS, 2023, 13 (07)
  • [8] Strategies of Design Concepts and Energy Systems for Nearly Zero-Energy Container Buildings (NZECBs) in Different Climates
    Koke, Johannes
    Schippmann, Andre
    Shen, Jingchun
    Zhang, Xingxing
    Kaufmann, Peter
    Krause, Stefan
    [J]. BUILDINGS, 2021, 11 (08)
  • [9] Research on a Systematical Design Method for Nearly Zero-Energy Buildings
    Li, Ji
    Xu, Wei
    Cui, Ping
    Qiao, Biao
    Wu, Siyang
    Zhao, Chenghua
    [J]. SUSTAINABILITY, 2019, 11 (24)
  • [10] Energy systems in cost-optimized design of nearly zero-energy buildings
    Ferrara, Maria
    Fabrizio, Enrico
    Virgone, Joseph
    Filippi, Marco
    [J]. AUTOMATION IN CONSTRUCTION, 2016, 70 : 109 - 127