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首页> 外文期刊>Journal of structural engineering >Rocking Timber Structure with Slip-Friction Connectors Conceptualized As a Plastically Deformable Hinge within a Multistory Shear Wall
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Rocking Timber Structure with Slip-Friction Connectors Conceptualized As a Plastically Deformable Hinge within a Multistory Shear Wall

机译:带有摩擦连接器的摇摆木结构,概念化为多层剪力墙内的可塑性变形铰链

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Recent experiments on a 2.44x2.44m rigid timber wall panel with slip-friction connectors have demonstrated the feasibility of enabling elastoplastic behavior in structures that would otherwise be essentially rigid. The slip-friction connectors are adopted as the hold-downs that anchor the ends of the wall to the foundation. These replace the traditionally used steel bracket hold-downs, which relied on inelastic damage to the screw or nail connections for energy dissipation. Overturning resistance of the wall directly relates to the slip-force in the slip-friction connectors. On the slip-force being reached, the intention is that the wall rocks in a controlled manner. A numerical study demonstrates the energy dissipation advantages of this approach. A direct-displacement-based design procedure is proposed for a multistory wall with slip-friction connectors. The wall is numerically modeled, and its response to earthquake time-history loadings compared with that of an idealized structure with a single plastic deformable hinge at the base. Results show that when gravity is not considered, the wall structure with slip-friction connectors behaves almost identically to that of its idealized equivalent. Taking into consideration higher mode effects of multi-degree-of-freedom (MDOF) rocking structures, base shears, and response accelerations are capped to the level expected, but residual displacements are significant. However, with self-weight considered, residual displacements of the wall are trivially small, and maximum displacements are also, in general, reduced. For the wall configurations investigated, the results suggest that a rocking timber wall unit at the base of a multistory shear wall will not only provide the load limiting benefits of a plastically deformable hinge, but also minimize maximum drifts, and allow for the structure to restore to its original position. (C) 2015 American Society of Civil Engineers.
机译:最近在带有滑动摩擦连接器的2.44x2.44m刚性木材墙板上进行的实验表明,在原本为刚性的结构中实现弹塑性行为的可行性。滑动连接器用作将壁的端部锚固到基础的压紧件。这些替代了传统上使用的钢制支架压紧器,后者依靠对螺钉或钉子连接进行无弹性的破坏来消散能量。壁的倾覆阻力直接与滑动摩擦连接器中的滑动力有关。在达到滑动力时,目的是使壁以可控的方式摇摆。数值研究证明了这种方法的能量消耗优势。针对具有滑动摩擦连接器的多层墙,提出了一种基于直接位移的设计程序。对该墙进行了数值建模,并将其对地震时程荷载的响应与在底部具有单个可塑性变形铰链的理想结构的响应进行了比较。结果表明,当不考虑重力时,带有滑动摩擦连接器的墙结构的行为几乎与其理想化等效物的行为相同。考虑到多自由度(MDOF)摇摆结构的较高模态影响,基础剪力和响应加速度均限制在预期水平,但残余位移非常大。然而,考虑到自重,壁的残余位移很小,并且通常也减小了最大位移。对于所研究的墙构型,结果表明,多层剪力墙底部的摇摆木墙单元不仅可以提供可塑性变形铰链的载荷限制优势,而且还可以最大程度地减少最大漂移,并使结构恢复原状。恢复到原始位置。 (C)2015年美国土木工程师学会。

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