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Modelling the mechanical behaviour of typical wall-to-floor connection systems for cross-laminated timber structures

机译:为交叉层压木结构的典型墙到地板连接系统的机械性能建模

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This paper proposes a numerical model capable of predicting the mechanical behaviour and the failure mechanism of typical wall-to-floor connections for Cross-Laminated Timber structures. Such systems are assembled with angle brackets and hold-downs, anchored to the wall and floor panels with profiled nails and bolts. The metal connector and the elements to which it is fastened are modelled using 3D solid bodies, while the steel-to timber joints are simulated as non-linear hysteretic springs. Shear and tension tests are reproduced on two connection systems and results are compared to the test data obtained from similar configurations. Simulations lead to accurate predictions of the mechanical behaviour (i.e. elastic stiffness, maximum load-carrying capacity, and shape of the hysteresis cycles) and energy dissipation. Finally, the performance when lateral and axial loads are applied simultaneously is investigated. Analyses are carried out by varying the inclination of the load, with respect to the axis of the connector, between 0 degrees and 90 degrees. Results exhibit a quadratic interaction relationship between shear and tension loads, and prove that their coupled effect influences the stiffness and the maximum load-carrying capacity.
机译:本文提出了一个数值模型,能够预测交叉层压木材结构的典型墙-地板连接的力学行为和破坏机理。这样的系统用尖括号和压紧组件组装在一起,并用异型钉和螺栓固定在墙板和地板上。使用3D实体对金属连接器及其固定到其上的元素进行建模,而将钢与木材的连接点模拟为非线性滞后弹簧。剪切和拉伸测试在两个连接系统上进行再现,并将结果与​​从类似配置获得的测试数据进行比较。仿真可以准确预测机械性能(即弹性刚度,最大负载能力和磁滞循环的形状)和能量耗散。最后,研究了同时施加横向和轴向载荷时的性能。通过将负载相对于连接器轴线的倾斜度在0度到90度之间变化来进行分析。结果显示了剪切载荷和拉伸载荷之间的二次相互作用关系,并证明它们的耦合效应影响刚度和最大载荷承载能力。

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