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首页> 外文期刊>Journal of solar energy engineering >A Simplified Model for Radiative Transfer in Building Enclosures With Low Emissivity Walls: Development and Application to Radiant Barrier Insulation
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A Simplified Model for Radiative Transfer in Building Enclosures With Low Emissivity Walls: Development and Application to Radiant Barrier Insulation

机译:低辐射墙建筑围护结构中辐射传递的简化模型:辐射阻隔隔热的开发和应用

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摘要

This paper deals with a simplified model of radiative heat transfer in building enclosures with low emissivity walls. The approach is based on an existing simplified model, well known and used in building multizone simulation codes, for the long wave exchanges in building enclosures. This method is simply extended to the case of a cavity including a very low emissivity wall, and it is shown that the obtained formalism is similar to the one used in the case of the based model, convenient for enclosures with only black walls (blackbody assumption). The proposed model has been integrated into a building simulation code and is based on simple examples; it is shown that intermediate results between the imprecise initial simple model and the more precise detailed model, the net-radiosity method, can be obtained. Finally, an application of the model is made for an existing experimental test cell including a radiant barrier insulation product, well used in Reunion Island for thermal insulation of roofs. With an efficacy based on the very low emissivity of their surfaces and the consequent decrease in radiative heat transfer through the wall in which they are included, the proposed simplified model leads to results very close to those of the reference method, the net-radiosity method.
机译:本文讨论了具有低发射率墙的建筑围护结构中辐射传热的简化模型。该方法基于众所周知的现有简化模型,用于建筑物多区域模拟代码,用于建筑物围护结构中的长波交换。将该方法简单地扩展到包含非常低的发射率壁的腔体的情况,并且表明所获得的形式主义与基于模型的情况下使用的形式主义相似,对于仅具有黑壁的外壳(黑体假设)方便)。所提出的模型已集成到建筑物模拟代码中,并且基于简单的示例;结果表明,可以得到不精确的初始简单模型和更精确的详细模型之间的中间结果,即净辐射度方法。最后,该模型适用于现有的实验单元,其中包括辐射屏障隔热产品,该产品在留尼汪岛很好地用于屋顶隔热。基于其表面的极低发射率以及随之而来的通过它们的壁的辐射热传递而降低的功效,所提出的简化模型所得到的结果与参考方法(净辐射率方法)的结果非常接近。

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  • 来源
    《Journal of solar energy engineering》 |2011年第2期|p.77-89|共13页
  • 作者单位

    Physics and Mathematical Engineering forEnergy and Environment Laboratory,University of Reunion,Reunion Island, France 97430;

    Department of Civil, Environmental, andArchitectural Engineering,The University of Kansas,Lawrence, KS 66045-7609;

    Physics and Mathematical Engineering forEnergy and Environment Laboratory,University of Reunion,Reunion Island, France 97430;

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