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Reflective thermal insulation in non-ventilated air-gaps: experimental and theoretical evaluations on the global heat transfer coefficient

机译:非通风空气间隙中的反射热绝缘:对全球传热系数的实验和理论评价

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摘要

The refurbishment of existing buildings represents a priority target to reduce global energy consumption. An interesting solution is represented by multilayer systems made by insulating panels mounted on a suitable frame to form non-ventilated air-gaps with the existing envelopes. This solution is attractive because it allows for renewal and energy requalification of building facades by interventions addressed exclusively to the external surfaces, without interfering with occupants. However, it produces an increase of the building volume that could be in contrast with local construction regulations. In this context, the application of reflective (low-e) thermal insulation panels inside the air-gap seems appropriate to reduce the system thickness without penalizing the thermal transmittance of the renovated envelope. However, addressed investigations conducted on the combined convective and radiative heat transfer coefficients inside enclosures equipped with low-e materials, are lacking. In this paper, an experimental campaign conducted in a climatic chamber by the heat flux meter method on three different samples of commercial reflective panels inside a non-ventilated air-gap has shown, for the same sample thickness, an increase of the air-gap thermal resistance up to seven times. In order to evaluate the performances on a real scale, the experimental results were employed to tune a model developed in the COMSOL environment to determine the attainable global heat transfer coefficient in real scale air cavities. The results showed that thermo-reflective panels can produce the same effect of at least 6 cm of traditional insulating materials by avoiding additional space. Moreover, useful design information concerning the attainable thermal resistance growth related to the air-gap thickness and the thermo-reflective panel emissivity, were introduced. Results showed that by setting the vertical wall height, an optimal air-gap thickness that allows for minimizing the global heat transfer coefficient, can be identified, however, this is mainly when the emissivity coefficient of the panel surfaces is lower than 0.5. Furthermore, by setting the optimal thickness, the increase of the transferred thermal flux by quadruplicating the wall height is moderate being slightly greater than 16%. By monetizing the saved volume growth, the multilayer system equipped with thermo-reflective panels is economically profitable, especially with the insulating panel cost increase and in zones where the average building value is high. (C) 2021 Elsevier B.V. All rights reserved.
机译:现有建筑的翻新代表了减少全球能源消耗的优先目标。一种有趣的解决方案由安装在合适框架上的绝缘板制成的多层系统来表示,以形成与现有信封的非通风气隙。这种解决方案很有吸引力,因为它允许通过专门用于外表面的干预来进行建筑立面的续期和能量需求,而不会干扰乘员。然而,它产生了与当地施工规定相比的建筑物的增加。在这种情况下,在空气间隙内部的反射(低e)隔热板的应用似乎是合适的,以降低系统厚度,而不会惩罚经过翻新的包络的热透射率。然而,缺乏对配备有低E材料的外壳内部的相应对流和辐射传热系数进行的解决调查。在本文中,在非通风气隙内的三种不同样品的热通量计方法中通过热通量仪表方法进行了一种实验活动,示出了相同的样品厚度,增加了气隙的增加热阻高达七次。为了评估实际规模的性能,采用实验结果调整COMSOL环境中开发的模型,以确定真正的空气腔内可获得的全球传热系数。结果表明,通过避免额外的空间,热反射板可以产生至少6cm的传统绝缘材料的效果。此外,引入了有关与空气间隙厚度和热反射面板发射率有关的可实现的热阻生长的有用设计信息。结果表明,通过设定垂直壁高,可以识别允许最小化全局传热系数的最佳空气间隙厚度,然而,这主要是当面板表面的发射率系数低于0.5时。此外,通过设定最佳厚度,通过四重塑壁高度的转移的热通量的增加适度略高于16%。通过将保存的体积增长的货币化,配备有热反光板的多层系统在经济上有利可图,特别是绝缘面板成本增加和平均建筑值高的区域。 (c)2021 Elsevier B.v.保留所有权利。

著录项

  • 来源
    《Energy and Buildings》 |2021年第4期|110769.1-110769.17|共17页
  • 作者单位

    Univ Calabria Mech Energy & Management Engn Dept P Bucci 42-C & 46-C I-87036 Arcavacata Di Rende CS Italy;

    Univ Calabria Mech Energy & Management Engn Dept P Bucci 42-C & 46-C I-87036 Arcavacata Di Rende CS Italy;

    Univ Calabria Dept Comp Engn Modelling Elect & Syst P Bucci 42-C & 46-C I-87036 Arcavacata Di Rende CS Italy;

    Univ Calabria Mech Energy & Management Engn Dept P Bucci 42-C & 46-C I-87036 Arcavacata Di Rende CS Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Reflective coatings; CFD; COMSOL; Building renovation; Thermal losses; Heat transfer coefficients;

    机译:反光涂层;CFD;COMSOL;建筑翻新;热损失;传热系数;

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