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基于Passivhaus与PV-GR系统下的绿色屋顶可持续性应用探索
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作者 李丽霞 金荣科 +1 位作者 郑祺璋 汤梦龙 《中文科技期刊数据库(全文版)工程技术》 2024年第7期0132-0137,共6页
气候变化是当今世界面临的最重要挑战之一。温室气体排放导致的全球气温上升,极端天气事件频发,这对全球环境和人类社会都带来了巨大影响。而随着城市化进程的飞速发展,城市的空气污染严重。建筑屋顶作为建筑至关重要的第五立面,力求在... 气候变化是当今世界面临的最重要挑战之一。温室气体排放导致的全球气温上升,极端天气事件频发,这对全球环境和人类社会都带来了巨大影响。而随着城市化进程的飞速发展,城市的空气污染严重。建筑屋顶作为建筑至关重要的第五立面,力求在节能减排中最大可能发挥其作用。绿色屋顶作为一种可持续的建筑设计形式,有望在减缓气候变化过程中发挥积极作用。希望能够通过对Passivhaus与PV-GR系统的应用和分析来探索绿色屋顶的可持续性应用。 展开更多
关键词 建筑节能 屋顶绿化 passivhaus PV-GR系统 屋顶节能措施
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Discussion on Passivhaus Technology System and Its Engineering Application
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作者 JING Xiaotong ZHAO Xiang JIANG Qiuyi 《Journal of Landscape Research》 2017年第2期1-4,共4页
Passivh aus technology is gradually applied in kinds of projects around the world because of excellent energy-saving effect since it was invented. It is becoming a new tendency of the development of building energy ef... Passivh aus technology is gradually applied in kinds of projects around the world because of excellent energy-saving effect since it was invented. It is becoming a new tendency of the development of building energy efficiency. In this paper, the concept, contents, and evaluation criteria of Passivhaus technology system are introduced, and the latest domestic and foreign cases using Passivhaus technology system are analyzed. It is concluded that building designers should focus on their profession in the Passivhaus technology system in order to achieve the goal of improving indoor environment quality and building energy efficiency. 展开更多
关键词 passivhaus Green building Building energy efficiency
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THE PASSIVHAUS STANDARD IN THE MEDITERRANEAN CLIMATE:EVALUATION,COMPARISON AND PROFITABILITY
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作者 Saldaña-Márquez Gómez-Soberón +3 位作者 Arredondo-Rea Almaral-Sánchez Gómez-Soberón Rosell-Balada 《Journal of Green Building》 2015年第4期55-72,共18页
INTRODUCTION One of the main environmental problems faced by the global community in the twenty-first century is unquestionably the reduction of greenhouse gas emissions(Fuller and Crawford 2011).To face this challeng... INTRODUCTION One of the main environmental problems faced by the global community in the twenty-first century is unquestionably the reduction of greenhouse gas emissions(Fuller and Crawford 2011).To face this challenge,the European Union(EU)has set the so-called 2020 Horizon as one of its main objectives:limiting the emission of greenhouse gas emissions by 20%,satisfying 20%of all energy needs through renewable sources,and improving energy efficiency by 20%(The Euro-pean Union 2012).The last projection forecast in 2012 by the European Envi-ronmental Agency(EEA)established that Spain was one of the countries in the EU furthest from reaching these objectives(The European Union 2013).As a result,implementing measures devised to meet the 2020 objectives is currently a priority for the Spanish government.In recent decades,the housing sector has played a decisive role in increas-ing global energy demands and greenhouse gas emissions(Nejat et al.2015).In 2014 Spain’s housing sector’s energy consumption needs represented 19%of total national consumption and 31%of the electricity demand(IDAE 2013).Starting from the design phase,reduction in energy consumption per square meter has become a prerequisite for the majority of buildings(Parameshwaran et al.2012;Koo et al.2014).The importance and urgency exhibited by the EU housing sector in achiev-ing the government objectives outlined in the 2020 Horizon have led the energy market to show a clear trend towards buildings with higher energy performance in the future(Shimschar et al.2011).Similarly,the success factor of energy efficiency initiatives will depend to a large degree on the method or the indica-tors used when measuring energy performance in each building(Abu Bakar et al.2015;Day and Gunderson 2015).As a result,selecting one energy evaluation methodology over another can be decisive in the path taken by Spain,change the current perception of the country,and increase Spain’s standing within the EU.Several studies(Feist et al.2005;Schnieders and Hermelink 2006;Mahdavi and Doppelbauer 2010;Mlakar and Strancar 2011;Hatt et al.2012;Dahlstrøm et al.2012;Dequaire 2012;Proietti et al.2013;Ridley et al.2013;Stoian et al.2013;Moran et al.2014;O’Kelly et al.2014)indicate that the Passivhaus standard(PS)can be used as a highly effective tool in both limiting greenhouse gas emissions and increasing building energy efficiency.Other studies(Audenaert et al.2008;Moeseke 2011;Allacker and De Troyer 2013;McLeod et al.2013;Mlecnik 2013;Stephan et al.2013)challenge the adoption of the PS because they consider other options within the energy market to be better from both environmental and financial perspectives.Nonetheless,the precursors to the PS claim that the benefits of the standard can be replicated in any part of the world through its use during the design phase(Feist 2014;Passive House Institute 2010,2015;Passipedia 2015).The main objective of this study was to analyze the viability of using PS through the Passive House Planning Package(PHPP)tool in the Spanish housing sector,focusing on its use in the Mediterranean climate in the Province of Barcelona.To that end,we selected an isolated semidetached home,that exhibits the typical characteristics of current Spanish housing so that any possible deficiencies or virtues of adopting the PS are easily observable.The study was conducted using 3 construction proposals(PC,P1,and P2);the initial proposal(PC)is defined by conventional construction technology,while the remaining 2 proposals(P1 and P2)offer different construction alternatives focused on optimization(window glass,the building envelope,and improved installations),enabling evaluation of the PS criteria compliance.To test the ease of obtaining PS compliance without the need for changing the architectural design of the project,the design and space distribution of the PC alternative remained the same for the P1 and P2 options. 展开更多
关键词 eywordseywordseywordseywordseywords:passivhaus standard energy efficiency PHPP Mediterranean climate construction costs
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新风对采用被动房技术的居住建筑能耗的影响 被引量:15
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作者 章文杰 郝斌 +1 位作者 刘珊 程杰 《暖通空调》 北大核心 2015年第2期93-97,92,共6页
被动房技术对建筑围护结构的高要求提升了建筑的保温隔热性能和整体气密性,有效减少了围护结构的热传导和室内外空气渗透引起的冷热量损失,但为了满足室内卫生和舒适要求,需要有组织的通风空调方式,新风的处理和输配能耗突出。根据被动... 被动房技术对建筑围护结构的高要求提升了建筑的保温隔热性能和整体气密性,有效减少了围护结构的热传导和室内外空气渗透引起的冷热量损失,但为了满足室内卫生和舒适要求,需要有组织的通风空调方式,新风的处理和输配能耗突出。根据被动房技术参数要求及国内相关标准建立了对比模型,对北京地区某居住建筑不同新风量时的冷热负荷及通风空调系统能耗进行了模拟计算。结果表明,采取30m3/(人·h)的最小新风量时,被动房冬季最大负荷为22W/m2,夏季最大负荷为55W/m2左右,其中新风负荷分别占63.8%和34.2%;采用排风全热回收装置存在一定的能源效益,使得被动房全年供暖空调能耗为22.66kW·h/(m2·a),比按照现行北京节能标准设计的居住建筑节能7%左右。 展开更多
关键词 被动房 居住建筑 新风负荷 能量回收 模拟
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“被动式建筑”发展现状及政策建议
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作者 修勤绪 《节能与环保》 2022年第3期35-36,共2页
“被动式建筑”理念自提出以来,已推广到世界多个国家。本文梳理研究了“被动式建筑”的国际发展现状,相关标准和认证情况,从早期探索阶段、技术导则阶段、成熟标准体系阶段三个方面研究了其在我国的发展现状,并提出了加强顶层设计、完... “被动式建筑”理念自提出以来,已推广到世界多个国家。本文梳理研究了“被动式建筑”的国际发展现状,相关标准和认证情况,从早期探索阶段、技术导则阶段、成熟标准体系阶段三个方面研究了其在我国的发展现状,并提出了加强顶层设计、完善科研标准、开展试点示范、强化国际合作四个方面的建议。 展开更多
关键词 被动式建筑 建筑节能 超低能耗建筑
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Life-Cycle Cost Analysis of an Installed Multiunit Seasonal Thermal Energy Store
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作者 Shane Colelough Neil J. Hewitt Philip Griffiths 《Journal of Energy and Power Engineering》 2017年第7期439-445,共7页
The financial viability of a solar STES (seasonal thermal energy store) installed in a mixed commercial and residential multiunit development of low-energy buildings located in Lysekil, Sweden, a maritime Scandinavi... The financial viability of a solar STES (seasonal thermal energy store) installed in a mixed commercial and residential multiunit development of low-energy buildings located in Lysekil, Sweden, a maritime Scandinavian Climate has been investigated. Using recorded figures for the installation costs and performance, a financial life cycle analysis has been undertaken to determine the cost effectiveness of the system. The time value of money is considered and an LCC (life cycle cost) analysis undertaken to identify the cost-effectiveness of the solution. It shows that while a direct heating and hot water system incorporating STES can be economically viable in a Swedish maritime climate in the long term, assistance such as that provided by government incentives is required to assist with the high capital cost of the initial investment. 展开更多
关键词 STES passive house fmancial analysis nZEB passivhaus seasonal thermal energy storage STORAGE LCC analysis
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夏热冬冷地区居住建筑过热分析 被引量:2
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作者 任志刚 刘道儒 +1 位作者 卢振斌 唐小虎 《武汉理工大学学报》 CAS 北大核心 2017年第9期56-61,共6页
为研究夏热冬冷地区居住建筑的过热状况,以武汉为例,利用EnergyPlus对全年逐时操作温度进行计算,结合室内过热理论,计算并分析建筑过热状况。同时,对室内过热与外墙传热系数的关系进行数值分析。结果显示,在无主动制冷条件下,模型建筑... 为研究夏热冬冷地区居住建筑的过热状况,以武汉为例,利用EnergyPlus对全年逐时操作温度进行计算,结合室内过热理论,计算并分析建筑过热状况。同时,对室内过热与外墙传热系数的关系进行数值分析。结果显示,在无主动制冷条件下,模型建筑室内过热率很高,过热对室内不舒适率的贡献度很高,盲目减小传热系数会提高过热风险;对于武汉地区非空调居住建筑,南向墙体传热系数推荐范围值为0.42~0.48 W/(m^2·K),北向墙体传热系数推荐范围值为0.32~0.40 W/(m^2·K),墙体通用传热系数推荐范围值为0.36~0.44 W/(m^2·K)。 展开更多
关键词 夏热冬冷地区 居住建筑 过热 传热系数 被动房
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湘西地区乡土民居被动式节能技术适应性研究 被引量:8
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作者 刘盛 《建筑学报》 北大核心 2016年第S2期42-45,共4页
以湘西地区乡土民居为研究对象,通过问卷调查对不同外围护结构形式的民居进行调研,初步发掘出当地乡土民居存在的传统节能技术及存在问题;针对室内热环境较差的传统木构民居,利用数值模拟方法探讨不同被动式节能技术的适应性,最后基于... 以湘西地区乡土民居为研究对象,通过问卷调查对不同外围护结构形式的民居进行调研,初步发掘出当地乡土民居存在的传统节能技术及存在问题;针对室内热环境较差的传统木构民居,利用数值模拟方法探讨不同被动式节能技术的适应性,最后基于正交实验设计,对多种被动式节能技术进行优化设计,最终得到最优化的被动式节能技术措施。 展开更多
关键词 被动式节能技术 热环境 乡土民居 湘西
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Trombe walls with nanoporous aerogel insulation applied to UK housing refurbishments
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作者 Mark Dowson David Harrison Zahir Dehouche 《International Journal of Smart and Nano Materials》 SCIE EI 2014年第4期283-303,共21页
There is an opportunity to improve the efficiency of passive Trombe walls and active solar air collectors by replacing their conventional glass covers with lightweight polycarbonate panels filled with nanoporous aerog... There is an opportunity to improve the efficiency of passive Trombe walls and active solar air collectors by replacing their conventional glass covers with lightweight polycarbonate panels filled with nanoporous aerogel insulation.This study investigates the thermal performance,energy savings,and financial payback period of passive Aerogel Trombe walls applied to the existing UK housing stock.Using parametric modeling,a series of design guidance tables have been generated,providing estimates of the energy savings and overheating risk associated with applying areas of Trombe wall to four different house types across the UK built to six notional construction standards.Calculated energy savings range from 183 kWh/m2/year for an 8 m2 system retrofitted to a solid walled detached house to 62 kWh/m2/year for a 32 m2 system retrofitted to a super insulated flat.Predicted energy savings from Trombe walls up to 24 m2 are found to exceed the energy savings from external insulation across all house types and constructions.Small areas of Trombe wall can provide a useful energy contribution without creating a significant overheating risk.If larger areas are to be installed,then detailed calculations would be recommended to assess and mitigate potential overheating issues. 展开更多
关键词 silica aerogel nanoporous insulation energy harvesting solar wall passivhaus
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