地震破坏钢筋混凝土柱的防火性能试验研究

IF 0.9 Q4 CONSTRUCTION & BUILDING TECHNOLOGY
Hemanth Kumar Chinthapalli, A. Agarwal
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引用次数: 0

摘要

目的地震不仅会增加火灾发生的几率,而且会破坏城市的生命线,阻碍灭火工作。大多数国际规范对结构抗震和防火安全都有独立的建议。然而,诸如地震后火灾等多重灾害事件的可能性却很少得到解决。设计/方法/途径本文对地震后火灾条件下钢筋混凝土(RC)柱进行了试验研究。提出了一种试验方法,允许测试柱而不是整个结构框架。这种方法使我们能够单独控制载荷和边界条件,并便于在各种条件下进行测试。此外,它还允许对结构进行测试,直到失效。本文研究了地震烈度、轴向载荷比和柱的延性细部等参数对结构的地震破坏及其防火性能的影响。对6根钢筋混凝土柱进行了拟静力地震加载-火-轴压复合加载试验。结果表明:在火灾条件下,受4%及以下横向位移影响的延性细部柱没有明显的承载能力损失。6%的横向漂移对柱造成了严重的破坏,并降低了火灾条件下的承载能力。地震荷载作用在柱上的轴向荷载水平对火灾条件下柱的破坏程度和承载能力的降低有非常显著的影响。未详细说明延性行为的柱在火灾条件下轴向承载能力的降低更为显著。研究限制/意义由于测试设置的限制,本研究仅限于230毫米大小的柱。这些发现对更大的柱截面的适用性需要通过开发数值分析方法和模拟文献中可用的其他地震后火灾试验来验证。本文提出的实验程序为完整的结构框架系统的PEF性能测试提供了一种替代方法。除了易于进行测试之外,该程序还可以更好地控制加热,结构负载和边界条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fire performance of earthquake-damaged reinforced concrete columns: an experimental study
PurposeEarthquake tremors not only increase the chances of fire ignition but also hinder the fire-fighting efforts due to the damage to the lifelines of a city. Most of the international codes have independent recommendations for structural safety against earthquake and fire. However, the possibility of a multi-hazard event, such as fire following an earthquake is seldom addressed.Design/methodology/approachThis paper presents an experimental study of Reinforced Concrete (RC) columns in post-earthquake fire (PEF) conditions. An experimental approach is proposed that allows the testing of a column instead of a full structural frame. This approach allows us to control the loading and boundary conditions individually and facilitates the testing under a variety of these conditions. Also, it allows the structure to be tested until failure. The role of parameters, such as earthquake intensity, axial load ratio and the ductile detailing of the column on the earthquake damage and subsequently the fire performance of the structure, is studied in this research. Six RC column specimens are tested under a sequence of quasi-static earthquake loading, followed by combined fire and axial compression loading conditions.FindingsThe experiment results indicate that ductile detailed columns subjected to 4% or less lateral drift did not lose significant load-carrying capacity in fire conditions. A lateral drift of 6% caused significant damage to the columns and reduced the load-carrying capacity in fire conditions. The level of the axial load acting on the column at the time of earthquake loading was found to have a very significant effect on the extent of damage and reduction in column load capacity in fire conditions. The columns that were not detailed for a ductile behavior observed a more significant reduction in axial load carrying capacity in fire conditions.Research limitations/implicationsThis study is limited to columns of 230 mm size due to the limitations of the test setup. The applicability of these findings to larger column sections needs to be verified by developing a numerical analysis methodology and simulating other post-earthquake-fire tests available in the literature.Originality/valueThe experimental procedure proposed in this paper offers an alternative to the testing of a complete structural frame system for PEF behavior. In addition to the ease of conducting the tests, the procedure also allows much better control over the heating, structural loading and boundary conditions.
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来源期刊
Journal of Structural Fire Engineering
Journal of Structural Fire Engineering CONSTRUCTION & BUILDING TECHNOLOGY-
CiteScore
2.20
自引率
10.00%
发文量
28
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