首页> 外文OA文献 >Thermal properties of granular silica aerogel for high-performance insulation systems
【2h】

Thermal properties of granular silica aerogel for high-performance insulation systems

机译:用于高性能绝缘系统的粒状二氧化硅气凝胶的热性能

摘要

Based on mounting evidence in support of anthropogenic global climate change, there is an urgency for developments in high-performance building techniques and technologies. New construction projects provide substantial opportunities for energy efficiency measures, but they represent only a small portion of the building stock. Conversely, while existing buildings are plentiful, they typically have a much narrower range of feasible energy efficiency options. Therefore, there will continue to be a need for the development of new and improved energy efficiency measures for new building construction and even more so for deep retrofits of existing buildings. This thesis provides an overview of the research performed into the on-going development at MIT of a high-performance panelized insulation system based on silica aerogel. Two test methods were used for measuring the thermal conductivity of the granules: the transient hot-wire technique and the guarded hot-plate system. Utilizing the hot-wire set-up, it was demonstrated that compressing a bed of granules will decrease the thermal conductivity of the system until a minimum point is reached around the monolithic density of the aerogel. For the Cabot granules, this was seen at 13 mW/m-K and about 150 kg/m3. The MIT granules showed equal performance to the Cabot granules at bed densities 20-30 kg/m3 lower. The hot-plate testing was able to experimentally evaluate previous analytical predictions regarding the conductivity impact of the internal panel truss and the under-prediction of radiant heat transfer in the hot-wire method. Hot-wire testing was also done in a vacuum chamber to quantify potential performance improvements at reduced air pressures. Since a vacuum would require the incorporation of a barrier film into the panel system, some analyses were done into the thermal bridging potential and gas diffusion requirements of such a film. Additionally, physical prototyping was done to explore how the film would be incorporated into the existing panel design. The aerogel-based insulation panel being developed at MIT continues to show promise, though there are still plenty of opportunities remaining in the development cycle.
机译:基于支持人为全球气候变化的越来越多的证据,迫切需要高性能建筑技术的发展。新的建设项目为节能措施提供了大量机会,但仅占建筑存量的一小部分。相反,尽管现有建筑物很多,但它们通常具有较窄的可行能源效率选择范围。因此,将继续需要为新建筑物的建造,甚至是对现有建筑物的深度改造,开发新的和改进的能效措施。本文概述了麻省理工学院正在进行的基于二氧化硅气凝胶的高性能平板隔热系统的研究。两种测试方法用于测量颗粒的热导率:瞬态热线技术和保护性热板系统。利用热线装置,已证明压缩颗粒床将降低系统的热导率,直到达到气凝胶的整体密度附近的最小点。对于卡博特颗粒,其观察值为13 mW / m-K和约150 kg / m3。 MIT颗粒在床密度低20-30 kg / m3时表现出与Cabot颗粒相同的性能。热板测试能够对内部面板桁架的电导率影响和热线法中辐射传热的预测不足进行实验性评估,从而进行实验评估。还在真空室内进行了热线测试,以量化在降低的气压下潜在的性能改进。由于真空需要将阻隔膜引入面板系统中,因此对这种薄膜的热桥势和气体扩散要求进行了一些分析。此外,还进行了物理原型制作,以探索如何将影片整合到现有的面板设计中。麻省理工学院正在开发的基于气凝胶的隔热板仍显示出希望,尽管在开发周期中仍有大量机会。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利

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