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Hygrothermal and energy retrofit planning of masonry facade historic building used as museum and office: A cultural properties case study

机译:摩萨里门面历史建筑的湿热和能量改造规划用作博物馆和办公室:文化物业案例研究

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摘要

The optimization of building materials and energy technologies is imperative to reduce building energy consumption and thereby minimize greenhouse gas emissions. Common energy retrofits include the addition of walls or roof insulation, window renovations, heating upgrades, installation of ventilating and air conditioning (HVAC) systems and managing the building's operational schedules. Historic buildings differ from other general buildings in two major aspects that affect energy retrofits. This study analyzed the effect of) Energy Efficiency Measure (EEMs) packages, which improve the hygrothermal and energy performances using infrared thermography images and building simulation. The hygrothermal and energy performances were analyzed separately for the office and museum. EEM1 is a package that adds 150 mm PUR insulation only to roof and wall. EEM1 significantly reduced the risk of mold growth after three years, as mold index values approached zero. The results of EEM1 show that additional application of insulation could reduce the risk of mold growth. Results of the energy retrofit analysis indicate that improvements in the window performance and airtightness reduce the heating energy consumption. In particular, the improvement in airtightness drastically reduced heating energy consumption in winter. Whereas all EEMs packages applied to buildings reduced heating energy consumption, EEM5 achieved a heating energy reduction of 72% and a total energy consumption reduction of 60%. EEM5 is a package that integrates all the technologies for maximum energy savings including adding insulation, improving airtightness, replacing window systems, installing internal blinds, and replacing LED lighting. Building performance retrofits will be the subject of further studies, enabling the continued use and conservation of historic buildings.
机译:建筑材料和能源技术的优化必须降低建筑能耗,从而最大限度地减少温室气体排放。常见的能量改造包括添加墙壁或屋顶绝缘,窗户装修,加热升级,通风和空调(HVAC)系统的安装,并管理建筑物的运营计划。历史建筑物与影响能源改造的两个主要方面的其他一般建筑物不同。本研究分析了能量效率措施(EEMS)封装的效果,其改善了使用红外热成像图像和建筑模拟的湿热和能量性能。为办公室和博物馆单独分析湿热和能量表演。 EEM1是一个包装,只能在屋顶和墙壁上增加150毫米的保温。由于模具指数值接近零,EEM1显着降低了模具生长的风险。 EEM1的结果表明,额外的绝缘应用可以降低模具生长的风险。能量改造分析的结果表明,窗口性能和气密性的改进降低了加热能耗。特别是,气密性的改善在冬季大大降低了加热能量消耗。虽然适用于建筑物的所有EEMS封装降低了加热能耗,EEM5实现了72%的加热能量减少,总能耗降低了60%。 EEM5是一款包装,可集成所有技术,以实现最大节能,包括添加绝缘,提高气密性,更换窗口系统,安装内部百叶窗,更换LED照明。建立性能改造将是进一步研究的主题,从而实现历史建筑的持续使用和保护。

著录项

  • 来源
    《Energy》 |2020年第15期|117607.1-117607.15|共15页
  • 作者单位

    Department of Architecture and Architectural Engineering Yonsei University Seoul 03722 Republic of Korea;

    Department of Architecture and Architectural Engineering Yonsei University Seoul 03722 Republic of Korea;

    Department of Architecture and Architectural Engineering Yonsei University Seoul 03722 Republic of Korea;

    Department of Architecture and Architectural Engineering Yonsei University Seoul 03722 Republic of Korea;

    Department of Architecture and Architectural Engineering Yonsei University Seoul 03722 Republic of Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Historical building; Hygrothermal performance; Energy retrofits; Building simulation;

    机译:历史建筑;湿热的表现;能量改造;建筑模拟;

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