Numerical Analysis and Modelling of Heat Transfer Processes through Perforated Clay Brick Masonry Walls

G. Kanellopoulos, V.G. Koutsomarkos, K.J. Kontoleon, K. Georgiadis-Filikas
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引用次数: 16

Abstract

The aim of this study is to analyse the thermal behaviour of walls corresponding to perforated clay brick masonry layers. The complexity of this work relies on the effect of all heat transfer mechanisms simultaneously; therefore, apart from conduction through the solid material, the propagation of heat depends on convection and radiation mechanisms in the region of the air cavities (pattern of small holes). Evidently, the geometry of perforated bricks and mortar joints of the brickwork, as well as the thermophysical properties of building materials, can modify significantly the evolution of the heat wave under specific boundary conditions at both external/internal sides of the examined layer (ambience). Furthermore, the dynamics of the actual heat flow are affected by the values of thermal-emissivity at the exposed surfaces of the brick holes. In this study, several of these issues are analysed in order to expose their influence on the thermal response of perforated clay brick masonry walls. The transient thermal analysis was carried out by employing the finite element method and by adopting a well-known CFD program focused on heat transfer processes. Secondly, the investigation has been extended to determine the corresponding thermophysical properties of an analogous solid layer (same thickness) that can produce an equivalent heat wave excitation at its interior surface. The resulting values can be useful to promote the building design and diminish the uncertainties regarding the heat flows through building envelopes; besides, assessing precisely the thermal behaviour of building configurations is essential, since the calculation of energy requirements through buildings has become of increasing importance lately.

多孔粘土砖砌体墙体传热过程的数值分析与建模
本研究的目的是分析与多孔粘土砖砌体层相对应的墙体的热行为。这项工作的复杂性依赖于所有传热机制同时产生的影响;因此,除了通过固体材料的传导外,热的传播还依赖于空腔(小孔模式)区域的对流和辐射机制。显然,砌体的穿孔砖和砂浆接缝的几何形状,以及建筑材料的热物理性质,可以显著地改变在特定边界条件下的热波的演变,在被检测层(环境)的内外两侧。此外,实际热流的动态还受到砖孔暴露表面热辐射率的影响。本文对其中几个问题进行了分析,以揭示它们对多孔粘土砖砌体墙体热响应的影响。瞬态热分析采用有限元法和著名的CFD程序进行,主要关注传热过程。其次,将研究扩展到确定可以在其内表面产生等效热浪激发的类似固体层(相同厚度)的相应热物理性质。所得值可用于促进建筑设计,减少建筑围护结构热流的不确定性;此外,精确评估建筑结构的热行为是必不可少的,因为通过建筑物计算能源需求最近变得越来越重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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