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Model-Based Assessment of Long-Term Serviceability and Fire Resistance for Underground Reinforced Concrete Ducts

机译:基于模型的长期可用性和耐火性耐钢筋混凝土管道的耐火性评估

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摘要

The collapse simulation of underground reinforced concrete (RC) ducts surrounded by soil foundations in a fire is conducted using multi-scale finite element analysis. The underground RC ducts are found to be deteriorated by both long-term soil subsidence and creep and shrinkage of concrete. The long-term shear crack risk is clarified by site inspection of some underground RC ducts. To conduct the structural risk assessment, the multi-scale simulation is applied and its performance upgraded to 1000 degrees C. The release of chemically bound water from hardened cement paste is developed in the scheme of micropore structural modelling. It is linked with the mesoscale thermodynamics of vapour and the mechanics of the solid skeleton, and its fracture is integrated with the macroscopic cracked concrete constitutive models. This framework is upgraded to include the spalling of concrete cover in the event of a fire, and the exposure of reinforcing bars to high temperatures during a fire is reproduced. As the moisture dynamics inside the micropores of concrete can be used to determine the creep and shrinkage of concrete, long-term RC deformation can also be consistently taken into account for its normal use.
机译:使用多尺度有限元分析进行了火灾地下钢筋混凝土(RC)管道覆盖的地下钢筋混凝土(RC)管道的崩塌模拟。地下RC管道被长期土壤沉降和混凝土的蠕变和收缩率恶化。通过一些地下RC管道的现场检查阐明了长期剪切裂缝风险。为了进行结构风险评估,应用多尺度模拟,其性能升级至1000℃。在微孔结构建模方案中,开发了从硬化水泥浆料中释放化学用水的释放。它与蒸汽的Mescle热力学和固体骨架的机械师相关联,其骨折与宏观裂缝混凝土构成型模型一体化。该框架升级以包括在火灾发生的情况下包括混凝土盖的剥落,并再现在火灾期间对高温的加强杆暴露。随着混凝土微孔内的水分动力学可用于确定混凝土的蠕变和收缩,也可以始终考虑其正常使用的长期RC变形。

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