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Adaption of active boundary conditions in structural fire testing

机译:主动边界条件在结构火灾测试中的适应

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Purpose - This paper aims to investigate the need for active boundary conditions during fire testing of structural elements, review existing studies on hybrid fire testing (HFT), a technique that would ensure updating of boundary conditions during a fire test, and propose a compensation scheme to mitigate instabilities in the hybrid testing procedure. Design/methodology/approach - The paper focuses on structural steel columns and starts with a detailed literature review of steel column fire tests in the past few decades with varying axial and rotational end restraints. The review is followed with new results from comparative numerical analyses of structural steel columns with various end constraints. HFT is then discussed as a potential solution to be adapted for fire testing of structural elements. Challenges in contemporary HFT procedures are discussed, and application of stiffness updating approaches is demonstrated. Findings - The reviewed studies indicate that axial and rotational restraints at the boundaries considerably influence the fire response of steel columns. Equivalent static spring technique for simulating effect of surrounding frame on an isolated column behavior does not depict accurate buckling and post-buckling response. Additionally, numerical models that simulate fire performance of a column situated in a full-frame do follow the trends observed in actual test results up until failure occurs, but these simulations do not necessarily capture post-failure performance accurately. HFT can be used to capture proper boundary conditions during testing of isolated elements, as well as correct failure modes. However, existing studies showed cases with instabilities during HFT. This paper demonstrates that a different stiffness updates calculated from the force-displacement response history of test specimen at elevated temperature can be used to resolve stability issues. Originality/value - The paper has two contributions: it suggests that the provision of active boundary conditions is needed in structural fire testing, as equivalent static spring does not necessarily capture the effect of surrounding frame on an isolated element during a fire test, and it shows that force-displacement response history of test specimen during HFT can be used in the form of a stiffness update to ensure test stability.
机译:目的-本文旨在研究结构构件耐火测试期间对主动边界条件的需求,回顾有关混合耐火测试(HFT)的现有研究,该技术可确保耐火测试期间更新边界条件,并提出补偿方案减轻混合测试过程中的不稳定性。设计/方法/方法-本文着重于结构钢柱,并从详细的文献综述开始,回顾了过去几十年来使用不同轴向和旋转端部约束的钢柱耐火测试。回顾之后是具有各种端部约束的结构钢柱的比较数值分析得出的新结果。然后讨论了HFT,这是一种潜在的解决方案,适用于结构元件的耐火测试。讨论了现代HFT程序中的挑战,并演示了刚度更新方法的应用。发现-经过审查的研究表明,边界处的轴向约束和旋转约束极大地影响了钢柱的火灾响应。用于模拟周围框架对孤立柱行为的影响的等效静态弹簧技术无法描述准确的屈曲和后屈曲响应。此外,模拟全机架立柱耐火性能的数值模型会遵循实际测试结果中观察到的趋势,直到发生故障为止,但这些模拟不一定能准确捕获故障后的性能。 HFT可用于在隔离元件测试以及正确的故障模式期间捕获适当的边界条件。但是,现有研究表明,HFT期间的病例不稳定。本文证明,根据试样在高温下的力-位移响应历史计算出的不同的刚度更新可用于解决稳定性问题。原创性/价值-本文有两个贡献:建议进行结构耐火测试时需要提供主动边界条件,因为等效耐久弹簧不一定能在耐火测试中捕获周围框架对隔离元件的影响,并且显示了在HFT期间试样的力-位移响应历史可以以刚度更新的形式使用以确保试验的稳定性。

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