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A simplified dynamic model based on response factor method for thermal performance analysis of capillary radiant floors

机译:一种基于响应因子方法的简化动态模型,用于毛细管辐射地板的热性能分析

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摘要

Capillary radiant floors are much thinner and lighter than concrete radiant floors by embedding capillary tubes in insulation layers to supply heat, so that they can respond to temperature adjustment more quickly. In this study, a simplified dynamic model for the thermal performance analysis of capillary radiant floors was developed based on the response factor method. Next an experiment was conducted, the results of which were compared to results predicted by the model. The calculation results agree well with experimental data. The maximum deviation between the calculated surface temperatures and the experimental mean surface temperatures is 0.4 degrees C during the period of the starting and the maximum deviation of heat flux of the water side in the first minute is 8%, respectively. The developed dynamic model can calculate the surface temperature of the capillary tube and the heat fluxes of both the water side and the indoor air side directly if the water temperature and the indoor temperature are known regardless of whether they are constant or varied. The transient heat supplied by water and the heat stored in the floor can also be determined then. The model can be used to calculate the upward heat flow into the room above the floor and the downward heat flow into the room below the floor. At last, the effects of the surface layer and the tube spacing on surface temperature, heat flux, and time constants of capillary radiant floors are also analyzed by the simplified dynamic model.
机译:毛细管辐射地板通过将毛细管管嵌入绝缘层以供应热量,比混凝土辐射楼层更薄,更轻。它们可以更快地响应温度调节。在该研究中,基于响应因子方法开发了一种简化的毛细管辐射地板热性能分析的动态模型。接下来进行实验,结果与模型预测的结果进行比较。计算结果与实验数据很好。计算出的表面温度和实验式平均表面温度之间的最大偏差在第一分钟中的开始和水侧的热通量的最大偏差分别为8%。如果在水温和室内温度是不管它们是恒定的或变化的情况,则开发的动态模型可以直接计算毛细管的表面温度和水侧和室内空气侧的热通量直接。也可以确定水和储存在地板中的热量的瞬态热量。该模型可用于计算地板上方的房间的向上热流,向下热流入地板下方的房间。最后,通过简化的动态模型分析了表面层和管间距对表面温度,热通量和时间常数的影响。

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  • 作者单位

    Univ Shanghai Sci &

    Technol Sch Environm &

    Architecture Jungong Rd 516 Yangpu Dist Shanghai 200082 Peoples R China;

    Univ Shanghai Sci &

    Technol Sch Environm &

    Architecture Jungong Rd 516 Yangpu Dist Shanghai 200082 Peoples R China;

    Univ Shanghai Sci &

    Technol Sch Environm &

    Architecture Jungong Rd 516 Yangpu Dist Shanghai 200082 Peoples R China;

    Univ Shanghai Sci &

    Technol Sch Environm &

    Architecture Jungong Rd 516 Yangpu Dist Shanghai 200082 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑基础科学;
  • 关键词

  • 入库时间 2022-08-20 05:31:03

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