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首页> 外文期刊>Journal of structural engineering >Analytical Solutions for Elevated-Temperature Behavior of Composite Beams with Partial Interaction
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Analytical Solutions for Elevated-Temperature Behavior of Composite Beams with Partial Interaction

机译:局部相互作用的复合梁高温特性的解析解

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This paper presents novel analytical solutions to describe the behavior of composite steel-concrete beams with partial interaction at elevated temperatures. The analytical model is derived by means of the principle of virtual work and, based on its strong form, solutions are derived in closed form for the cases of a simply supported beam and of a propped cantilever subjected to a generic regime of temperature. The materials are assumed to behave in a linear fashion, but their elastic moduli are modified to account for the degradation which the materials exhibit at elevated temperatures. The accuracy of the proposed solutions is tested against the results obtained by means of a finite-element method, as no directly applicable solutions appear to be available in the literature with which to validate the formulation. A refined 16 degrees of freedom finite-element is selected for this purpose, and its derivation and modification are outlined briefly. Applications are proposed to illustrate the ease of use of the analytical solutions to gain a better insight into the fundamental structural response, and to provide a convenient design tool. For structural design, the use of a simplified integration method to account for the thermal effects and for the material degradation has been considered in order to circumvent the complex calculation of section properties that can arise when the degraded elastic moduli and induced thermal gradients vary across the cross section. This simplification is valid in general, but it leads to slight underestimations of the structural deformation state at elevated temperatures for high levels of shear connection. A second application of the theory is given, in which the stress state due to thermal effects is superimposed with that due to external sustained loading. The load level to attain first yield of the member is shown to depend significantly on the stiffness of the shear connection.
机译:本文提出了新颖的分析解决方案,以描述在高温下具有部分相互作用的复合钢-混凝土梁的性能。该分析模型是根据虚拟功原理导出的,并基于其强大的形式,针对简单支撑梁和受温度影响的悬臂,以封闭形式导出解决方案。假定材料以线性方式工作,但是修改了它们的弹性模量以解决材料在高温下表现出的降解。相对于通过有限元方法获得的结果,测试了所提出解决方案的准确性,因为在文献中似乎没有直接适用的解决方案可用来验证配方。为此选择了精炼的16自由度有限元,并简要概述了其推导和修改。提出了一些应用程序,以说明分析解决方案的易用性,以便更好地了解基本的结构响应,并提供一种方便的设计工具。对于结构设计,已考虑使用简化的积分方法来考虑热效应和材料降解,以规避截面性能的复杂计算,当截面的退化弹性模量和诱导的热梯度在整个过程中发生变化时可能会出现这种复杂的计算。横截面。通常,这种简化是有效的,但是对于较高水平的剪切连接,会导致在高温下结构变形状态的轻微低估。给出了该理论的第二个应用,其中热效应引起的应力状态与外部持续载荷引起的应力状态叠加。显示出达到构件的第一屈服的载荷水平很大程度上取决于剪切连接的刚度。

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