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Building Envelope for Energy-Efficient Residential Homes, A Case Study for the U.S. Department of Energy Challenge Home Student Design Competition

机译:为节能住宅建筑围护结构,美国能源部挑战家庭学生设计竞赛案例研究

摘要

With the continuous rise of population and expansion of urban areas, the need for additional housing and infrastructure is growing rapidly. Building sector is consuming a vast majority of the natural resources to meet the needs of urbanization and is in need of efficient, sustainable solutions that are viable for the customer, the economy and the environment. The building sector is both the problem and the solution to the issues of the carbon footprint of our society (Architecture 2030, 2011).The envelope (roofs, walls, and foundations) and windows typically account for 36% of overall energy use, or about 14.3 quads in residential and commercial buildings combined, at an annual cost of $133 Billion. A well designed building envelope can impact 51% of the building energy loads (U. S. Department of Energy National Energy Technology Laboratory, 2009). The purpose of this research is to assess selected types of residential home envelopes and their components. Comparative analysis was used to evaluate the thermal performance and thus the applicability of these components for modern residential buildings, as embodied energy and toxic emissions were also important factors. The research is mainly focused on townhomes as one of the sustainable types of neighborhood development (USGBC, LEED Neighborhood Development program).The assumption is that the high performance of the envelope is correlated to the reduction of heating and cooling loads in the interior and consequently, the overall energy and resource consumption of the building through its life-cycle. The derived hypothesis would be that by selecting an appropriate, high-performing building envelope assembly will ameliorate the overall performance of the building, thus lowering its environmental impact in terms of resource depletion and carbon emissions. Further benefits for the users include high levels of thermal comfort, health indoor air, lighting for daily tasks, noise control and an overall reduction in the whole-house energy consumption. This resource management could potentially reflect on the construction budget and later on, the utility costs.In order to address the research questions through the most relevant data, a mixed methods approach was selected. Exploratory method, focusing on qualitative research during the first phase was used to examine and document the correlation of different assembly types with their respected components and the thermal performance of the whole envelope. Moreover, quantitative data for the observed characteristic of the assembly components (mostly cavity insulation types) provided numerical values that were compared in order to derive conclusions about different componentsu27 lifecycle performance and impact. The quantitative research portion gave firm data necessary for triangulation of the hypothesis and findings gathered in the qualitative, descriptive portion of the research. The research has been informed by examples and case studies elaborated in the literature review.The residential attached unit assessed as the case study was designed for the 2014. DOE Challenge Home Student Design Competition. This small footprint, two story townhome unit, was designed to achieve high-performance throughout its lifecycle. Several envelope assemblies were taken in consideration, the decisions being informed by the EEBA (The energy u26 Environmental building Alliance) and US Department of Energyu27s Building America Program u22Houses That Worku22 educational training course. The individual assembly parameters were assessed in energy modeling software (REM Rate and HEED) and addressing the issues considering maintenance and durability, as well as construction cost analyses, a specific combination of strategies has been selected. The 1,354 sq.ft residence features SIP and high mass concrete walls, Frost-Protected Shallow Foundations, high performance glazing (U-0.16; SHGC-0.561), a green roof and all ductwork distributed inside the conditioned space. Passive strategies are complemented with efficient active systems including ductless Mini-Split heating and cooling backup units, air circulation through integrated ERV and Radiant Floor Heating. Construction cost strategies included right-sizing and value engineering, elimination of duct systems, elimination of basement, application of prefab or engineered components that lower labor costs and reduce construction waste.As a result, this affordable end-unit part of a five-home row housing development for Denveru27s Sustainability Park was designed to achieve LEED Platinum and Energy Star V3.0 Certification while remaining within financial reach to local families earning Denveru27s median income. With a Home Energy Rating System (HERS) Index of 7 (100 being the `standard new homeu27), this all-electric home, is projected to use between 1,157 KWh/year (REM Rate) and 2,263 KWh/year (HEED) and 91% less energy than the LEED Reference Home (Tajsic et al. Aries House. U.S. Department of Energy Home Challenge Student Design Competition. Unpublished)High-performing building envelopes designed with sustainable practices in mind have a potential to lower the overall energy consumption of a building throughout its lifecycle and reduce its carbon footprint. Moreover, itu27s important to select building materials that have the potential to offset the embodied energy of their production through the benefits of their performance within a system. Smart material procurement for wall and ceiling cavity insulation, its proper sizing, installation and maintenance are key for achieving maximum performance of the assembly. Durable, well-sealed sealed envelopes make up for a healthy, long lasting building enclosure that requires the least amount of maintenance or replacement and contribute to the indoor air quality and thermal comfort of the building.Topics relating to these issues have a high potential to be evaluated in other research endeavors or tested through different case studies.
机译:随着人口的不断增加和城市面积的扩大,对额外住房和基础设施的需求迅速增长。建筑部门正在消耗大量自然资源以满足城市化的需求,并且需要高效,可持续的解决方案,这些解决方案对于客户,经济和环境都是可行的。建筑行业既是我们社会碳足迹的问题,也是解决问题的方法(建筑2030年,2011年)围墙(屋顶,墙壁和地基)和窗户通常占整体能源消耗的36%,或者住宅和商业建筑中约有14.3个四边形,每年耗资1,330亿美元。设计良好的建筑围护结构可能会影响51%的建筑能源负荷(美国能源部国家能源技术实验室,2009)。这项研究的目的是评估选定类型的住宅家庭信封及其组件。比较分析用于评估热性能,因此这些组件在现代住宅建筑中的适用性,因为具体体现的能源和有毒排放也是重要因素。这项研究主要针对联排别墅,将其作为邻里发展的可持续类型之一(USGBC,LEED邻里发展计划),假设围护结构的高性能与内部供暖和制冷负荷的减少相关,因此,即整个生命周期中建筑物的整体能源和资源消耗。得出的假设是,通过选择合适的高性能建筑围护结构组件,可以改善建筑物的整体性能,从而从资源消耗和碳排放方面降低其对环境的影响。为用户带来的其他好处包括:高水平的热舒适性,健康的室内空气,用于日常任务的照明,噪音控制以及整体能耗的降低。这种资源管理可能会反映在建设预算上,然后反映在公用事业成本上。为了通过最相关的数据解决研究问题,选择了一种混合方法。在第一阶段中,以定性研究为重点的探索性方法被用来检查和记录不同装配类型与它们所关注的部件以及整个外壳的热性能之间的关系。此外,针对组装组件(主要是空腔绝缘类型)观察到的特征的定量数据提供了数值进行比较,以便得出有关不同组件生命周期性能和影响的结论。定量研究部分提供了三角测量所必需的坚实数据,并在研究的定性,描述性部分中收集了发现。文献综述中详细阐述了实例和案例研究,从而为这项研究提供了信息。作为案例研究评估的住宅附属单元是为2014年DOE挑战家庭学生设计竞赛而设计的。这个占地只有两层的小型联排别墅单元旨在在其整个生命周期内实现高性能。考虑了几个封套组件,这些决定是由EEBA(能源环境建筑联盟)和美国能源部的“美国建筑计划” “能工作的房屋” “教育培训课程”告知的。在能源建模软件(REM Rate和HEED)中评估了各个装配参数,并针对考虑了维护和耐用性以及建筑成本分析的问题,选择了特定的策略组合。这座1,354平方英尺的住宅具有SIP和高品质混凝土墙,防霜冻浅基础,高性能玻璃(U-0.16; SHGC-0.561),绿色屋顶以及所有分布在空调室内的管道系统。被动策略与高效的主动系统相辅相成,包括无管Mini-Split加热和冷却备用单元,通过集成ERV和辐射地板供暖的空气循环。建筑成本策略包括权衡规模和价值工程,消除风道系统,消除地下室,应用预制件或工程组件以降低人工成本并减少建筑浪费,因此,这套可负担得起的五居室终端单元丹佛可持续发展公园的联排别墅开发旨在获得LEED白金级和能源之星V3.0认证,同时又能使当地家庭经济收入达到丹佛市中位数收入。有了“家庭能源评级系统”(HERS)指数7(100是“标准新住宅”),该全电住宅预计将使用1,157 KWh /年(REM率)至2每小时263千瓦时(HEED),比LEED参考住宅低能耗91%(Tajsic等人,Aries House。美国能源部挑战学生设计竞赛,未出版)。降低建筑物整个生命周期的总体能耗并减少碳足迹的潜力。此外,重要的是选择具有潜力的建材,这些建材可以通过其在系统中的性能优势来抵消其生产所体现的能量。墙体和天花板空腔隔热层的智能材料采购,正确的尺寸设置,安装和维护是实现组件最佳性能的关键。耐用,密封良好的密封信封构成了健康,持久的建筑围护结构,需要最少的维护或更换,并有助于建筑物的室内空气质量和热舒适性。在其他研究工作中进行评估或通过不同的案例研究进行测试。

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    Tajsic Milica;

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  • 年度 2014
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