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Experimental and multidimensional numerical analysis of the thermal behavior of an anhydrite radiant slab floor heating system: A multi-objective sensitivity study

机译:硬石膏辐射平板地板供热系统热行为的实验和多维数值分析:多目标敏感性研究

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In this study, experimental and comprehensive multidimensional numerical models are developed for the analysis of the thermal behavior of an anhydrite slab floor heating system (FHS). Three different modeling approaches are employed, including a one dimension (ID) Modelice method based on an object-oriented approach, a two dimension (2D) finite difference method (FDM), and a three dimension (3D) finite volume method (FVM), using the ANSYS/Fluent software. The comparison between the numerical results and the measured data is performed for the inlet and outlet water temperatures, the average slab surface temperature, the depth local temperatures, and the average total heat flux. Experiments and simulations were in agreement regarding the thermal response of the FHS in accordance to the well-known 2D FDM. A multi-objective sensitivity study is then performed, based on a design of experiments method (DoE) in order to analyze the effects of the design and physical control factors and their interactions on the average surface temperature and the thermal time constant. A full factorial design, generating 128 simulations based on our validated 2D FDM model is used to construct polynomial meta-models using the aforementioned thermal parameters. As a result, the water volume flow rate and the inner diameter are the most influential factors on the surface temperature, whilst the thermal time constant is shown to be considerably influenced by the slab thickness, density, and specific heat, as well as their interactions. The elicited results may be exploited in order to help practicing building engineers to optimize the FHS, and to enhance its energy performance. (C) 2018 Elsevier B.V. All rights reserved.
机译:在这项研究中,开发了实验和综合的多维数值模型,用于分析硬石膏板地板加热系统(FHS)的热行为。采用了三种不同的建模方法,包括基于面向对象方法的一维(ID)Modelice方法,二维(2D)有限差分方法(FDM)和三维(3D)有限体积方法(FVM) ,使用ANSYS / Fluent软件。对进水和出水温度,平均平板表面温度,深度局部温度和平均总热通量进行数值结果和测量数据之间的比较。根据众所周知的2D FDM,有关FHS的热响应的实验和模拟是一致的。然后基于实验方法(DoE)的设计进行多目标灵敏度研究,以分析设计和物理控制因素及其相互作用对平均表面温度和热时间常数的影响。基于我们经过验证的2D FDM模型生成128个仿真的全因子设计,可以使用上述热参数来构建多项式元模型。结果,水的体积流量和内径是影响表面温度的最主要因素,而热时间常数受平板厚度,密度和比热及其相互作用的影响很大。 。可以利用所得出的结果来帮助实践的建筑工程师优化FHS,并提高其能源绩效。 (C)2018 Elsevier B.V.保留所有权利。

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