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A numerical study on the effects of design/operating parameters of the radiant panel in a radiation-based task air conditioning system on indoor thermal comfort and energy saving for a sleeping environment

机译:基于辐射的任务空调系统中辐射面板的设计/运行参数对睡眠环境的室内热舒适性和节能影响的数值研究

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Due to the increased expectations on human thermal comfort in sleeping environments at a low energy consumption, task/ambient air condition system (TAC) can be the best air conditioning method when considering the immobility of a sleeping person. Previously, convection-based TAC systems for sleeping environments were developed, with an obvious inadequacy of cold-draft problem. Therefore, a new radiation-based TAC system(R-TAC) was previously developed and experimentally studied at a set of fixed design parameter for its radiant panel. Therefore, a follow-up numerical study on the effects of varying design/operating parameters of the radiant panel on indoor thermal comfort and energy saving performances has been carried out, and the study results reported in this paper. Firstly, a geometry model based on the experimental bedroom used in the previous experimental study, boundary conditions and numerical study cases are detailed. Secondly, the results of validating the numerical method using the previous experimental data are reported. Thirdly, the numerical results on indoor thermal comfort, energy saving and draft risk at different surface temperature and emissivity, area of the radiant panel, and the distance between the radiant panel and a bed are presented. The numerical results demonstrated that all the four design/operating parameters of the radiant panel can significantly affect thermal comfort and energy saving performances in the bedroom when using the R-TAC system: increasing surface temperature can lead to a higher PMV value and a higher EUC value; increasing surface emissivity and area of the radiant panel a lower PMV value and a lower EUC value; reducing the distance between the bed and the panel a lower PMV value and a higher EUC value. Finally, the DR values were at a very low level in all the study cases, indicating the cold draft problem encountered when using a convective heat transfer based TAC system for a sleeping environment can be effectively resolved when using the R-TAC system. (C) 2017 Elsevier B.V. All rights reserved.
机译:由于人们对低能耗的睡眠环境中的人体热舒适性的期望越来越高,因此考虑到睡眠者的行动不便时,任务/环境空调系统(TAC)可能是最佳的空调方法。以前,开发了用于睡眠环境的基于对流的TAC系统,该系统明显缺乏冷风问题。因此,先前已经开发了一种新的基于辐射的TAC系统(R-TAC),并在其辐射面板的一组固定设计参数下进行了实验研究。因此,对散热板的不同设计/运行参数对室内热舒适性和节能性能的影响进行了后续的数值研究,并将研究结果报道在本文中。首先,详细介绍了基于先前实验研究中使用的实验卧室的几何模型,边界条件和数值研究案例。其次,报告了使用先前的实验数据验证数值方法的结果。第三,给出了在不同表面温度和辐射率下室内热舒适性,节能和通风风险,辐射板面积以及辐射板与床之间距离的数值结果。数值结果表明,使用R-TAC系统时,辐射板的所有四个设计/运行参数都可以显着影响卧室的热舒适性和节能性能:升高的表面温度可以导致更高的PMV值和更高的EUC值;增加表面辐射率和辐射板的面积,降低PMV值和降低EUC值;降低床和面板之间的距离,可以降低PMV值和EUC值。最后,在所有研究案例中,DR值都处于非常低的水平,这表明使用R-TAC系统可以有效解决在对流环境中使用基于对流传热的TAC系统用于睡眠环境时遇到的冷风问题。 (C)2017 Elsevier B.V.保留所有权利。

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