Numerical study of racking resistance of timber-made double-skin facade elements

E. Kozem Šilih, M. Premrov
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引用次数: 1

Abstract

The use of a double-skin façade (DSF) is a quite new approach in the building renovation process, complementing conventional renovation strategies. A double-skin façade is an envelope wall construction that consists of two transparent surfaces separated by a cavity and can essentially improve the thermal and acoustic resistance of the building envelope. The main double-skin wall components are usually composed of a hardened external single glazing pane and a double or triple thermal insulating internal glass pane, which are connected to the frame structure. Recently, many studies have analysed the thermal and acoustic performance of DSF elements, but almost none in terms of structural behaviour, especially in terms of determining the racking resistance of such wall elements. Moreover, with a view to reduce the global warming potential, an eco-friendly timber frame instead of a commonly used steel, aluminium or plastic frame is studied in this analysis. However, structurally combining timber and glass to develop an appropriate load-bearing structural element is a very complex process involving a combination of two materials with different material properties, where the type of bonding can be selected as a crucial parameter affecting the racking resistance range. Since the costs of experiments performed on such full-scale DSF elements are very high and such experiments are time-consuming, it is crucial to develop special mathematical models for analysing the influence of the most important parameters. Therefore, the main goal of this paper is to develop the finite element mathematical model of the studied DSF structural elements with a highly ecological solution by using a timber frame. In the second step, the developed model is further implemented in the numerical analysis of racking stiffness and followed by a comprehensive parametric numerical study on different parameters influencing the horizontal load-bearing capacity of such DSF timber elements. The obtained results indicate that the new approach of the developed load-bearing prefabricated timber DSF elements can essentially improve racking resistance and stiffness compared with the widely studied timber-glass single-skin wall elements and can thus be fully recommended especially in the structural renovation process of old buildings.
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木结构双层幕墙构件抗货架阻力的数值研究
双层幕墙(DSF)的使用在建筑翻新过程中是一种相当新的方法,补充了传统的翻新策略。双层幕墙是一种围护结构,由两个由空腔分隔的透明表面组成,可以从根本上提高建筑围护结构的热阻和隔音性能。主要的双层幕墙构件通常由硬化的外单层玻璃板和双层或三层隔热的内玻璃板组成,并与框架结构相连。最近,许多研究分析了DSF单元的热学和声学性能,但几乎没有在结构性能方面,特别是在确定这种墙体单元的机架阻力方面。此外,为了减少全球变暖的可能性,在本分析中研究了一种环保木结构,而不是常用的钢,铝或塑料框架。然而,在结构上结合木材和玻璃来开发合适的承重结构元件是一个非常复杂的过程,涉及到两种具有不同材料性能的材料的组合,其中粘合类型的选择可以作为影响货架阻力范围的关键参数。由于在这种全尺寸DSF单元上进行实验的费用非常高,而且这种实验非常耗时,因此必须开发专门的数学模型来分析最重要参数的影响。因此,本文的主要目标是开发具有高度生态解决方案的DSF结构单元的有限元数学模型。第二步,将建立的模型进一步应用于货架刚度的数值分析,然后对不同参数对DSF木材单元水平承载能力的影响进行全面的参数化数值研究。研究结果表明,与已广泛研究的木玻璃单层墙体构件相比,所开发的承重预制木dsf构件的抗货架性和刚度有了本质上的提高,在老建筑的结构改造过程中尤其值得推荐。
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