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Reducing the Environmental Impacts of Building Materials: Embodied Energy Analysis of a High-Performance Building.

机译:减少建筑材料对环境的影响:高性能建筑物的嵌入式能量分析。

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摘要

The purpose of this research was to assess the embodied energy and carbon emissions of structural building materials, and determine environmental savings associated with construction. In common architectural practice, the analysis of the environmental cost of materials is typically not taken into account. This can be attributed to the lack of available data, loyalty to conventional construction methods, and complexity of embodied energy calculations. Although efforts are made to ensure accuracy of the information contained in energy databases, they are based on public domain sources and the "best" energy and carbon coefficients, with no guarantee to accuracy. Therefore, it is critical to develop new methods to accurately assess embodied energy and CO2 emissions of building materials. The need for this assessment is tied to the development of high-performance buildings that integrate and optimize energy efficiency and life cycle performance; shifting the focus to the reduction of building operational energy makes embodied energy a significant part of a building's life cycle.;This dissertation takes a case study approach focused on the assessment of the embodied energy of the structural materials and photovoltaic system of a high-performance building. This approach facilitated a detailed calculation of the selected materials' environmental costs, achieving accurate results in comparison with publicly available databases.
机译:这项研究的目的是评估结构建筑材料的内在能量和碳排放,并确定与建筑相关的环境节省。在一般的建筑实践中,通常不考虑材料环境成本的分析。这可以归因于缺乏可用数据,对常规构造方法的忠诚度以及具体化的能量计算的复杂性。尽管已尽力确保能源数据库中包含的信息的准确性,但它们是基于公共领域的资源以及“最佳”能源和碳系数,无法保证准确性。因此,开发新方法以准确评估建筑材料的内在能量和CO2排放至关重要。评估的需要与集成并优化能源效率和生命周期性能的高性能建筑的发展息息相关;将重点转移到减少建筑物的运行能量上,使体现的能量成为建筑物生命周期的重要组成部分。本论文采用案例研究方法,重点评估高性能结构材料和光伏系统的体现能量建造。这种方法有助于对选定材料的环境成本进行详细的计算,与公共数据库相比,可以获得准确的结果。

著录项

  • 作者

    Qarout, Layla.;

  • 作者单位

    The University of Wisconsin - Milwaukee.;

  • 授予单位 The University of Wisconsin - Milwaukee.;
  • 学科 Architecture.;Sustainability.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 134 p.
  • 总页数 134
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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