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Uncertainty-based life-cycle analysis of near-zero energy buildings for performance improvements

机译:接近零能耗建筑的基于不确定性的生命周期分析,以提高性能

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摘要

Near-zero energy buildings (nZEBs) are considered as an effective solution to mitigating CO2 emissions and reducing the energy usage in the building sector. A proper sizing of the nZEB systems (e.g. HVAC systems, energy supply systems, energy storage systems, etc.) is essential for achieving the desired annual energy balance, thermal comfort, and grid independence. Two significant factors affecting the sizing of nZEB systems are the uncertainties confronted by the building usage condition and weather condition, and the degradation effects in nZEB system components. The former factor has been studied by many researchers; however, the impact of degradation is still neglected in most studies. Degradation is prevalent in energy components of nZEB and inevitably leads to the deterioration of nZEB life-cycle performance. As a result, neglecting the degradation effects may lead to a system design which can only achieve the desired performance at the beginning several years. This paper, therefore, proposes a life-cycle performance analysis (LCPA) method for investigating the impact of degradation on the longitudinal performance of the nZEBs. The method not only integrates the uncertainties in predicting building thermal load and weather condition, but also considers the degradation in the nZEB systems. Based on the proposed LCPA method, a two-stage method is proposed to improve the sizing of the nZEB systems. The study can improve the designers' understanding of the components' degradation impacts and the proposed method is effective in the life-cycle performance analysis and improvements of nZEBs. It is the first time that the impacts of degradation and uncertainties on nZEB LCP are analysed. Case studies show that an nZEB might not fulfil its definition at all after some years due to component degradation, while the proposed two-stage design method can effectively alleviate this problem.
机译:接近零能耗的建筑物(nZEB)被认为是减少CO2排放并减少建筑部门能耗的有效解决方案。 nZEB系统(例如HVAC系统,能源供应系统,能源存储系统等)的适当大小对于实现所需的年度能源平衡,热舒适性和电网独立性至关重要。影响nZEB系统规模的两个重要因素是建筑物使用状况和天气状况所面临的不确定性,以及nZEB系统组件的退化影响。前一个因素已被许多研究人员研究。然而,在大多数研究中,降解的影响仍然被忽略。降解在nZEB的能量成分中普遍存在,不可避免地导致nZEB生命周期性能下降。结果,忽略退化效果可能导致系统设计只能在开始的几年中达到所需的性能。因此,本文提出了一种生命周期性能分析(LCPA)方法,以研究降解对nZEBs纵向性能的影响。该方法不仅集成了预测建筑物热负荷和天气状况的不确定性,还考虑了nZEB系统的性能下降。基于所提出的LCPA方法,提出了一种两阶段方法来改善nZEB系统的大小。这项研究可以提高设计人员对组件退化影响的理解,所提出的方法对于nZEB的生命周期性能分析和改进是有效的。这是首次分析降解和不确定性对nZEB LCP的影响。案例研究表明,由于部件性能下降,nZEB可能在几年后根本无法满足其定义,而提出的两阶段设计方法可以有效地缓解此问题。

著录项

  • 来源
    《Applied Energy》 |2018年第1期|486-498|共13页
  • 作者单位

    City Univ Hong Kong, Div Bldg Sci & Technol, Kowloon, Hong Kong, Peoples R China;

    City Univ Hong Kong, Dept Architecture & Civil Engn, Kowloon, Hong Kong, Peoples R China;

    City Univ Hong Kong, Div Bldg Sci & Technol, Kowloon, Hong Kong, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Uncertainty; Near-zero energy building; Degradation; Life-cycle performance; Design;

    机译:不确定度;近零能耗建筑;退化;生命周期性能;设计;

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