Quasi-steady state calculation method for energy contribution of sunspaces: a proposal for the European standard improvement

被引:0
|
作者
Passerini, Francesco [1 ]
Albatici, Rossano [1 ]
Frattari, Antonio [1 ]
机构
[1] Univ Trento, Trento, Italy
关键词
D O I
暂无
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Problems concerning global warming have been faced in the building sector by diminishing energy consumption in buildings by means of three main modes of action: the use of highly efficient systems powered preferably by renewable energy sources, the improvement of the energy characteristics of the envelope and the design of passive devices both for heating and for cooling. The latter are also encouraged by the recent Directive 2009/28/EC. In particular, sunspaces have been and are still nowadays widely used because they meet two different requirements: the heating of adjacent rooms and/ or of supply air with the creation of comfortable spaces to live in especially in the cold season. Although an extensive literature is present on the subject, calculation methods for appropriate dimensioning of sunspaces still suffer from a lot of uncertainties concerning both the real management of the users, the correct characteristics of the materials and the environmental boundary conditions (solar radiation and wind velocity above all) that strongly influence the performance of passive devices. Dynamic simulation tools are not largely used in this field especially because they are not yet user friendly. Moreover, problems are experienced when facing multiple reflections, precise estimation of convective coefficients, two and three-dimensional heat transmission. So, quasi-steady state calculation methods are generally preferred especially in the pre-design phase. Method 5000 and the Standard EN ISO 13790:2008 are the most common ones. Concerning the latter, research has been carried out in order to identify problems and propose solutions so to improve the results maintaining the simplified and easy approach. Calculations based on the technical standard and on the new proposal have been compared among them and with dynamic simulations concerning some particular features of sunspaces. The difference in results are pointed out and a critical analysis is presented.
引用
收藏
页码:141 / 150
页数:10
相关论文
共 37 条
  • [21] Applying a rigorous quasi-steady state approximation method for proving the absence of oscillations in models of genetic circuits
    Boulier, Francois
    Lefranc, Marc
    Lemaire, Francois
    Morant, Pierre-Emmanuel
    ALGEBRAIC BIOLOGY, PROCEEDINGS, 2008, 5147 : 56 - +
  • [22] CALCULATION OF HIGH-TEMPERATURE EQUILIBRIUM, PARTIAL EQUILIBRIUM AND QUASI-STEADY STATE PROPERTIES IN GASEOUS SYSTEMS, AND OF FLAME TEMPERATURES
    DIXONLEWIS, G
    GREENBERG, JB
    JOURNAL OF THE INSTITUTE OF FUEL, 1975, 48 (396): : 132 - 138
  • [23] A Joined Quasi-Steady-State Power Flow Calculation for Integrated Energy Systems
    Dancker, Jonte
    Wolter, Martin
    IEEE ACCESS, 2022, 10 : 33586 - 33601
  • [24] CIBSE TM54 energy projections I: A case study using quasi-steady state modelling
    Jain, Nishesh
    Burman, Esfand
    Mumovic, Dejan
    BUILDING SERVICES ENGINEERING RESEARCH & TECHNOLOGY, 2024, 45 (04): : 499 - 510
  • [25] A simple method for stable identification of diffusion coefficients in the quasi-steady state of a post-discharge nitriding process
    Fraguela, A.
    Gomez, J. A.
    Castillo, F.
    Oseguera, J.
    INVERSE PROBLEMS IN SCIENCE AND ENGINEERING, 2008, 16 (01) : 69 - 108
  • [26] Quasi-steady-state analysis and calculation of multi-energy flow for integrated energy system
    Zhong J.
    Li Y.
    Zeng Z.
    Cao Y.
    Dianli Zidonghua Shebei/Electric Power Automation Equipment, 2019, 39 (08): : 22 - 30
  • [27] Quasi-steady-state calculation method of temporary increased ventilation during daytime
    Goethals, K.
    Janssens, A.
    RESEARCH ON BUILDING PHYSICS, 2010, : 477 - 484
  • [28] Performance analysis of coupled quasi-steady state air flow calculation and dynamic simulation of hygrothermal transport inside porous materials
    Paepcke, Anne
    Nicolai, Andreas
    11TH NORDIC SYMPOSIUM ON BUILDING PHYSICS (NSB2017), 2017, 132 : 759 - 764
  • [29] Analysis and Calculation Method of Steady-state Energy Flow in Multi-energy Network
    Zhu Y.
    Cai Q.
    Gong P.
    Xia C.
    Yu Z.
    Xia R.
    Dianli Xitong Zidonghua/Automation of Electric Power Systems, 2021, 45 (20): : 59 - 66
  • [30] Assessment of building cooling energy need through a quasi-steady state model: Simplified correlation for gain-loss mismatch
    Corrado, Vincenzo
    Fabrizio, Enrico
    ENERGY AND BUILDINGS, 2007, 39 (05) : 569 - 579