双叶空心墙中木托梁与砌体连接的特性分析--第 2 部分:力学模型

IF 3.9 2区 工程技术 Q1 ENGINEERING, CIVIL
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引用次数: 0

摘要

对非加固砌体(URM)建筑的平面外行为进行抗震评估至关重要,因为平面外行为是 URM 建筑的主要倒塌机制之一。它受多个参数的影响,包括结构构件之间的连接不良,而震后观察则凸显了这一弱点。本文介绍了一个力学模型,旨在预测各种抗震机制对砌体空腔墙中木材-桁架连接强度能力的贡献。本文的研究考虑了两种不同的失效模式:桁架-墙体接口失效和 URM 墙体的 OOP 摇晃行为。因此,本文引入了两种力学模型来研究砌体空腔墙中木材-桁架连接的这些失效模式。其中一个模型主要针对接合墙界面失效,采用库仑摩擦模型进行接合滑动,并进一步扩展以纳入拱起效应。另一个模型则研究了墙体的 OOP 摇摆失效模式。综合力学模型已根据作者早先进行的实验结果进行了验证。所考虑的模型可以准确预测托梁连接的峰值承载力,并成功定义了每种机制在失效阻力方面的贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterisation of timber joists-masonry connections in double-leaf cavity walls – Part 2: Mechanical model

The seismic assessment of the out-of-plane (OOP) behaviour of unreinforced masonry (URM) buildings is essential since the OOP is one of the primary collapse mechanisms in URM buildings. It is influenced by several parameters, including the poor connections between structural elements, a weakness highlighted by post-earthquake observations. The paper presents a mechanical model designed to predict the contributions of various resisting mechanisms to the strength capacity of timber-joist connections in masonry cavity walls. The research presented in this paper considers two different failure modes: joist-wall interface failure, and OOP rocking behaviour of the URM walls. Consequently, two mechanical models are introduced to examine these failure modes in timber-joist connections within masonry cavity walls. One model focuses on the joist-wall interface failure, adopting a Coulomb friction model for joist-sliding further extended to incorporate the arching effect. The other model investigates the OOP rocking failure mode of walls. The combined mechanical model has been validated against the outcomes of an earlier experimental campaign conducted by the authors. The considered model can accurately predict the peak capacity of the joist connection and successfully defines the contribution of each mechanism in terms of resistance at failure.

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来源期刊
Structures
Structures Engineering-Architecture
CiteScore
5.70
自引率
17.10%
发文量
1187
期刊介绍: Structures aims to publish internationally-leading research across the full breadth of structural engineering. Papers for Structures are particularly welcome in which high-quality research will benefit from wide readership of academics and practitioners such that not only high citation rates but also tangible industrial-related pathways to impact are achieved.
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