...
首页> 外文期刊>Applied Energy >Multi-objective optimisation of bio-based thermal insulation materials in building envelopes considering condensation risk
【24h】

Multi-objective optimisation of bio-based thermal insulation materials in building envelopes considering condensation risk

机译:考虑凝结风险的建筑围护结构中生物基隔热材料的多目标优化

获取原文
获取原文并翻译 | 示例
           

摘要

The reduction in energy demand for heating and cooling with insulation materials increases the material related environmental impact. Thus, implementing low embodied energy materials may equilibrate this trade-off. Actual trends in passive house postulate bio-based materials as an alternative to conventional ones. Despite that, the implementation of those insulators should be carried out with a deeper analysis due to their hygroscopic properties. The moisture transfer, the associated condensation risk and the energy consumption for seven bio-based materials and polyurethane for a building-like cubicle are analysed. The performance is evaluated combining a software application to model the cubicle (EnergyPlus) and a tool to optimize its performance (jEPlus). The novelty of this optimization approach is to include and evaluate the effects of moisture in these insulation materials, taking into account the mass transfer through the different layers and the evaporation of the different materials. This methodology helps optimise the insulation type and thickness verifying the condensation risk, preventing the deterioration of the materials. The total cost of the different solutions is quantified, and the environmental impact is determined using the life cycle assessment methodology. The effect of climate conditions and the envelope configuration, as well as the risk of condensation, are quantified. The results show that cost and environmental impact can be reduced if bio-based materials are used instead of conventional ones, especially in semiarid climates. Condensation risk occurs for large thicknesses and in humid climates. In our case studies, hemp offered the most balanced solution.
机译:用绝缘材料进行加热和冷却的能量需求的减少增加了与材料有关的环境影响。因此,实施低体现的能量材料可以平衡这种折衷。被动房屋的实际趋势假定以生物材料为基础来替代传统材料。尽管如此,由于其绝缘性,这些绝缘子的实施应进行更深入的分析。分析了湿气的转移,相关的凝结风险以及七种生物基材料和建筑小隔间的聚氨酯的能耗。结合软件应用程序(用于模拟机柜)(EnergyPlus)和用于优化其性能的工具(jEPlus)来评估性能。考虑到通过不同层的传质和不同材料的蒸发,这种最优化方法的新颖性在于包括并评估了这些绝缘材料中水分的影响。这种方法有助于优化绝缘类型和厚度,从而验证冷凝风险,防止材料变质。量化不同解决方案的总成本,并使用生命周期评估方法确定对环境的影响。量化了气候条件和围护结构的影响以及结露的风险。结果表明,如果使用生物基材料代替传统材料,则可以降低成本和环境影响,尤其是在半干旱气候下。大厚度和潮湿气候下会发生冷凝的风险。在我们的案例研究中,大麻提供了最平衡的解决方案。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号