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首页> 外文期刊>Journal of materials in civil engineering >Experimental Investigation and Modeling of Thermal Effects on a Typical Cross-Laminated Timber Bracket Shear Connection
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Experimental Investigation and Modeling of Thermal Effects on a Typical Cross-Laminated Timber Bracket Shear Connection

机译:典型交叉层压木材支架剪切连接的热效应实验研究与建模

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摘要

Connections in mass timber structural systems are critical for transferring lateral forces from mass timber elements such as shear walls and diaphragms. Cross-laminated timber (CLT) is a prominent mass timber material used to manufacture these wall and floor assemblies. Although research exists that investigated the fire performance of CLT walls and floors, very little investigation has been devoted to the thermal performance of the connection systems themselves. This void in the data and knowledge surrounding CLT connections is an impediment for modeling the elevated temperature performance of CLT structures. Therefore, a series of shear tests were conducted on a CLT L-bracket connection assembly to characterize the thermal degradation of peak loads and initial stiffness as a function of exposure duration at a given temperature. A total of 116 specimens, including four control specimens, were tested according to a matrix of 28 exposure duration-temperature combinations. Two analytical models are developed to explain the thermal degradation-one assuming a mechanism based on first-order kinetics and the second using a statistical regression. The results of this work indicate that the degradation of peak load and initial stiffness with respect to exposure duration occurred at a linear rate and depended on temperature, according to the Arrhenius activation energy theory. This research is a step toward a holistic evaluation of elevated temperature modeling of CLT structures.
机译:大块木材结构系统中的连接对于传递大块木材元素(例如剪力墙和隔板)的侧向力至关重要。交叉层压木材(CLT)是一种用于制造这些墙壁和地板组件的重要木材材料。尽管存在研究CLT墙壁和地板的防火性能的研究,但很少有研究致力于连接系统本身的热性能。围绕CLT连接的数据和知识中的空白是对CLT结构高温性能建模的障碍。因此,在CLT L型支架连接组件上进行了一系列剪切测试,以表征在给定温度下峰值载荷的热降解和初始刚度与暴露时间的关系。根据28个暴露持续时间-温度组合的矩阵,总共测试了116个样品,包括四个对照样品。开发了两种分析模型来解释热降解-一种假设基于一阶动力学的机理,另一种假设基于统计回归的机理。根据Arrhenius活化能理论,这项工作的结果表明,峰值载荷和初始刚度相对于暴露持续时间的下降是线性发生的,并且取决于温度。这项研究是朝着全面评估CLT结构高温模型迈出的一步。

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