Hygrothermal field testing of multi-functional wood fibre panels for residential buildings
Hygrothermal field testing of multi-functional wood fibre panels for residential buildings
批准号:
487106-2015
负责人:
Gul, Mustafa
金额:
$2.96万
依托单位:
依托单位国家:
加拿大
项目类别:
Collaborative Research and Development Grants
财政年份:
2017
资助国家:
加拿大
项目状态:
已结题
起止时间:
2017-01-01 至 2018-12-31
中文摘要
近年来,能源效率和可持续性已经引起了当局和研究人员的极大兴趣。提出的研究将采用分析和实验的方法来研究不同气候条件下墙体系统的湿热性能。本研究中调查的墙体系统是由FPInnovations开发的,这是一家加拿大非营利组织,致力于建筑围护结构的节能和可持续战略。阿尔伯塔大学和FPInnovations计划调查和评估这些多功能面板在各种墙组件配置中的含水率和湿热性能。实时测量分析将有助于开发由现有组件组装而成的多功能面板,同时提供结构和湿热隔热性能。本研究的总体目标是通过在埃德蒙顿和温哥华两种不同气候条件下进行现场测试来评估所提议的面板系统的长期(~2年)热和湿度(与湿度相关)性能。这包括热阻等指标;温度分布;热桥接;热质量性能;水分含量;蒸汽控制能力;和干燥能力。还将开发和验证用于面板湿热分析的模拟模型。该研究将开发先进的模型来模拟多功能面板中的热量和水分传递。通过模拟木材纤维和其他层在吸湿等温线上的非线性材料特性,对其复杂的热湿传递过程进行模拟,可以全面了解不同气候条件下的性能。拟议的研究还将产生在住宅应用中使用环保且完全可回收的木纤维的实际指导方针。木材纤维的利用有望帮助居住者改善室内空气质量,该研究项目将通过向加拿大住宅建筑市场引入新技术,为加拿大经济做出贡献。
英文摘要
In recent years, energy efficiency and sustainability have drawn significant interest among authorities and researchers. The proposed study will use an analytical and experimental approach to investigate the hygrothermal performance of wall systems under different climate conditions. The wall systems to be investigated in this study are developed by FPInnovations, a Canadian non-profit organization working on energy-efficient and sustainable strategies for building envelopes. The University of Alberta and FPInnovations propose to investigate and evaluate the moisture content and hygrothermal performance of these multi-functional panels in a variety of wall assembly configurations. Analysis with real-time measurements will contribute to the development of multi-functional panels assembled from currently available components providing both structural and hygrothermal insulation properties. The general goal of this study is to evaluate the long term (~2 years) thermal and hygric (moisture-related) performance of proposed panel systems by conducting field tests in two different climates for the purpose of comparison, Edmonton and Vancouver. This encompasses such metrics as thermal resistance; temperature distribution; thermal bridging; thermal mass performance; moisture content; vapour control capacity; and drying capacity. A simulation model for hygrothermal analysis of the panels will also be developed and validated.The research will develop advanced modelling to simulate heat and moisture transfer in the multi-functional panels. The simulation of the complicated heat and moisture transfer process with the nonlinear material properties of wood fibre and other layers in moisture sorption isotherm will provide holistic understanding of performance under different climatic conditions. The proposed research will also result in practical guidelines for using wood fibre-which is environmentally-friendly and fully recyclable-in residential applications. The utilization of wood fibre is expected to help improve indoor air quality for occupants, and the research project will contribute to Canada's economy by introducing a new technology to the Canadian homebuilding market.
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