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Numerical and analytical assessment of the buckling behaviour of Blockhaus log-walls under in-plane compression

机译:平面压缩下Blockhaus原木墙屈曲性能的数值和分析评估

摘要

Blockhaus structural systems are commonly obtained by assembling multiple timber logs, by stacking them horizontally on the top of one another. Although based on simple mechanisms of ancient origins, the structural behaviour of Blockhaus systems under well-defined loading and boundary conditions is complex to predict.The paper focuses on the assessment of the typical buckling behaviour and resistance of vertically compressed timber log-walls. The effects of various mechanical and geometrical variables such as possible load eccentricities and initial curvatures, openings (e.g. doors or windows), fully flexible or in-plane rigid inter-storey floors are investigated by means of detailed finite-element (FE) numerical models. These FE models were first validated on test results of past buckling experiments performed on scaled log-wall specimens, as well as on recent buckling experiments carried out on full-scale timber log-walls, demonstrating the capability to appropriately describe the effective interaction between timber logs and to correctly predict the expected buckling failure mechanisms and ultimate resistance for the log-walls that were investigated. Comparisons with analytical solutions partly derived from classical theory of plate buckling and column buckling are also presented and critically discussed, in order to assess the applicability of these existing formulations - although specific for fully monolithic and isotropic plates and columns - to Blockhaus structural systems. A closed-form solution is finally proposed as a simplified design buckling method for timber log-walls under in-plane compression.
机译:Blockhaus结构系统通常是通过将多个原木水平叠放在一起而组装而成。尽管基于古代起源的简单机制,但在明确定义的载荷和边界条件下,Blockhaus系统的结构行为很难预测。本文着重评估垂直压缩木原木墙的典型屈曲行为和阻力。通过详细的有限元(FE)数值模型研究了各种机械和几何变量的影响,例如可能的载荷偏心率和初始曲率,开口(例如门或窗户),完全柔性或面内刚性的中间层地板。这些有限元模型首先根据过去对比例墙原木样进行的屈曲实验的测试结果以及最近对全尺寸木材原木墙体进行的屈曲实验的验证,证明了适当描述木材之间有效相互作用的能力。并正确预测所研究的原木墙的预期屈曲破坏机理和最终阻力。为了评估这些现有配方(虽然特定于完全整体和各向同性的板和柱)对Blockhaus结构系统的适用性,还提出并进行了批判性讨论,并与部分源自经典板屈曲和柱屈曲理论的分析方法进行了比较。最后提出了一种封闭形式的解决方案,作为平面内压缩下原木墙的简化设计屈曲方法。

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