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Damage mechanisms in cementitious coatings on steel members under axial loading

机译:轴向载荷作用下钢构件水泥涂层的损伤机理

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Cementitious coatings have been widely used as fire protection for steel structures, but they are vulnerable to structural deformations or vibrations, which may lead to reduction in their effectiveness and cause severe economic loss in the event of a fire. For buildings in practice, the problem can be critical because the coatings are assumed to be in good condition as they are usually hidden underneath architectural finishes, making it difficult and expensive to carry out routine inspection. To determine the actual fire resistance of a building after a moderate or severe loading event or a relatively long period of service, it is imperative to understand the performance of the coatings and to develop effective damage estimation methodologies. Loading conditions in a real buildings can be complex, however as there is inadequate previous work in this field, it is considered more important at this stage to determine the fundamental damage mechanisms in cementitious coatings on steel members subjected to axial loading, as investigated in this paper through experimental and numerical studies. At first, tests are carried out to obtain mechanical properties of the coating and the bond properties between the coating and the steel substrate. Then, a series of monotonic loading tests are conducted on axially loaded steel members to observe damage propagation in coating specimens. Subsequently, a cohesive zone finite element (CZFE) scheme is presented for modelling the damage with both interfacial and internal damage considered. The effectiveness of the proposed CZFE scheme is validated by comparison with different numerical approaches, interlaminar stress analysis and monotonic loading tests. From monotonic loading tests and CZFE numerical analyses, damage mechanisms in cementitious coatings on axially loaded steel members are clearly revealed. Under tensile loading, the damage begins with interfacial cracks at both ends, followed by transverse cracks within the coating resulting in its ultimate fracturing into segments. Under compressive loading, the damage also initiates at the ends with interfacial cracks and propagates towards the centre until the coating completely peels off. The findings from this research build a solid foundation for estimating the damage of cementitious coatings for trusses and large space structures, as most of the structural components in these structures are axially loaded. This work also provides an effective approach for further research on understanding damage mechanisms in cementitious coatings in steel frame structures under more realistic loading conditions. (C) 2015 Elsevier Ltd. All rights reserved.
机译:水泥涂料已被广泛用作钢结构的防火材料,但它们易受结构变形或振动的影响,这可能导致其有效性降低,并在发生火灾时造成严重的经济损失。对于实践中的建筑物,该问题可能很严重,因为假定涂料处于良好状态,因为它们通常隐藏在建筑饰面之下,这使得进行常规检查变得困难且昂贵。为了确定中度或重度负载事件或相对较长的服务期后建筑物的实际耐火性,必须了解涂料的性能并开发有效的破坏估算方法。实际建筑物中的荷载条件可能很复杂,但是,由于该领域以前的工作不够充分,因此在此阶段,确定承受轴向荷载的钢构件上的水泥涂层的基本破坏机理被认为更为重要。通过实验和数值研究的论文。首先,进行测试以获得涂层的机械性能以及涂层与钢基材之间的粘结性能。然后,对轴向加载的钢构件进行了一系列的单调加载测试,以观察涂层试样中的损伤传播。随后,提出了一种内聚区有限元(CZFE)方案,以考虑界面和内部损伤的情况下对损伤进行建模。通过与不同的数值方法,层间应力分析和单调加载测试进行比较,验证了所提出的CZFE方案的有效性。通过单调载荷试验和CZFE数值分析,可以清楚地揭示轴向载荷钢构件上的胶结涂层的损伤机理。在拉伸载荷下,损伤始于两端的界面裂纹,然后是涂层内的横向裂纹,最终导致其最终破裂成段。在压缩载荷下,损伤也从界面裂纹的末端开始,并向中心传播,直到涂层完全剥落。这项研究的发现为估算桁架和大型空间结构的水泥涂料的损坏奠定了坚实的基础,因为这些结构中的大多数结构部件都是轴向加载的。这项工作还为进一步研究在更现实的载荷条件下了解钢框架结构中水泥涂料的损伤机理提供了有效的方法。 (C)2015 Elsevier Ltd.保留所有权利。

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