Blast resistance of timber structural elements: A state-of-the-art review

IF 2.1 Q2 ENGINEERING, CIVIL International Journal of Protective Structures Pub Date : 2022-05-30 DOI:10.1177/20414196221092466
R. Mourão, A. Caçoilo, F. Teixeira-Dias, A. Montalva, Hollice F. Stone, Eric Jacques
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Abstract

The response of structures subject to impulsive loads remains a field of intense research. Whilst traditional construction materials, such as steel and concrete/masonry, have been the focus of most studies, further research on the performance of alternative materials for blast-resistant applications has been driven by their growing use in sustainable construction. Over the last years, engineers have been re-evaluating the use of timber as a prime construction material for a range of building types, from small office to high-rise residential buildings. As a result, there is now a growing need to study the blast resistance of timber structures, as they may become potential targets of terrorist attacks or being placed in the blast-radius of other critical buildings. A review of existing research on the blast resistance of timber structures is presented and key factors on the blast analysis and design of such structures are discussed. Most of the research has been conducted on light-frame wood stud walls, glued- and cross-laminated timber, and addresses material properties under high strain rates, typical failure modes, behaviour of structural connections and retrofitting solutions. Failure modes are reported to be highly dependent on the element layout and manufacturing aspects, and dynamic increase factors for the modulus of elasticity and maximum strength in the ranges of [1.05, 1.43] and [1.14, 1.60], respectively, have been proposed for different timber elements. Mechanical connectors play a significant role in dissipating energy through plastic deformation, as the brittle nature of timber elements compromises the development of their full capacity. Regardless the element type, SDOF models can accurately predict the dynamic response as long as idealised boundary conditions can be considered. Overall, although a good amount of research is available, more extensive research is needed to guide the design and engineering practice and contribute to the development of design codes and testing standards for timber structures under blast loading.
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木结构构件的抗爆破性能:最新研究进展
结构在脉冲载荷作用下的响应一直是研究的热点。虽然传统的建筑材料,如钢铁和混凝土/砖石,一直是大多数研究的重点,但由于它们在可持续建筑中的使用越来越多,对防爆应用替代材料性能的进一步研究受到了推动。在过去的几年里,工程师们一直在重新评估木材作为一系列建筑类型的主要建筑材料的使用,从小型办公室到高层住宅建筑。因此,现在越来越需要研究木结构的抗爆炸能力,因为它们可能成为恐怖袭击的潜在目标,或者被置于其他重要建筑物的爆炸半径内。综述了木结构抗震研究现状,讨论了木结构抗震分析与设计的关键因素。大多数研究都是在轻框架木柱墙、胶合和交叉层压木材上进行的,并解决了高应变率下的材料特性、典型的破坏模式、结构连接行为和改造解决方案。据报道,破坏模式高度依赖于单元布局和制造方面,并且已经提出了不同木材单元的弹性模量和最大强度的动态增加因子分别在[1.05,1.43]和[1.14,1.60]范围内。机械连接器在通过塑性变形耗散能量方面发挥着重要作用,因为木材元件的脆性损害了其全部能力的发展。无论何种单元类型,只要考虑理想边界条件,SDOF模型都能准确预测动力响应。总的来说,虽然已经有了大量的研究,但还需要更广泛的研究来指导设计和工程实践,并为爆炸荷载下木结构的设计规范和测试标准的制定做出贡献。
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来源期刊
CiteScore
4.30
自引率
25.00%
发文量
48
期刊最新文献
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