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Numerical simulation of the fire behaviour of thermally insulated reinforced concrete beams strengthened with EBR-CFRP strips

机译:EBR-CFRP条增强保温钢筋混凝土梁火灾行为的数值模拟

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This paper presents numerical investigations on the fire behaviour of reinforced concrete (RC) beams flexurally strengthened with externally bonded reinforcement (EBR) carbon fibre reinforced polymer (CFRP) strips, simultaneously subjected to a service load and the ISO 834 standard fire. Two dimensional (2D) finite element (FE) models were developed in order to simulate previous fire resistance tests on CFRP-strengthened RC beams comprising different fire protection schemes, with a thinner insulation layer along the bottom soffit of the beams and a thicker one in the CFRP anchorage zones. The variation with temperature of the thermal and mechanical properties of the constituent materials was considered and the CFRP-concrete interaction was modelled by means of bi-linear bond-slip laws previously calibrated for different temperatures. The numerical results were compared with experimental temperatures, midspan deflections and time for CFRP debonding. The models provided accurate predictions of the thermo-mechanical fire response of the beams, confirming that it is possible to exploit the CFRP mechanical contribution through a cable mechanism, provided that a thicker insulation is applied in the CFRP anchorage zones. The models predicted the CFRP debonding when the average temperature at the CFRP-concrete interface along the anchorage zones ranged from 1.1 to 1.4 times the adhesive glass transition temperature, which also compared well with test measurements. The numerical study presented in this paper, besides providing useful data to understand in further depth the structural effectiveness of CFRP strengthening systems during fire (namely, the strains/stresses in the materials and CFRP-concrete interface during fire exposure), allowed validating the global bond-slip laws for the CFRP-concrete interaction previously proposed by the authors, showing their adequacy for simulating the behaviour of EBR-CFRP strengthening systems under fire exposure, and a strategy for the design of fire protection systems that is based on the fulfilment of two main requirements: (i) the CFRP temperature along the central zone must remain below a certain critical temperature, avoiding its tensile rupture; and (ii) the temperature of the CFRP-concrete interface along the anchorage length must be kept below the adhesive T-g of the adhesive in order to prevent the CFRP debonding for the required time of fire exposure. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文对用外部粘结的增强(EBR)碳纤维增强的聚合物(CFRP)板挠曲增强的钢筋混凝土(RC)梁的火灾行为进行了数值研究,同时承受了使用载荷和ISO 834标准火灾。开发了二维(2D)有限元(FE)模型,以模拟先前对CFRP加固的RC梁的耐火性测试,该梁包含不同的防火方案,其梁的底部拱腹的绝缘层更薄,而梁的下拱角更厚CFRP锚固区。考虑了组成材料的热和机械性能随温度的变化,并通过事先针对不同温度校准的双线性键滑定律,对CFRP-混凝土相互作用进行了建模。将数值结果与实验温度,中跨挠度和CFRP脱胶时间进行了比较。这些模型提供了梁的热机械火灾响应的准确预测,确认了只要在CFRP锚固区中使用了更厚的隔热层,就有可能通过电缆机制利用CFRP的机械作用。当沿着锚固区域的CFRP-混凝土界面的平均温度为胶粘玻璃化转变温度的1.1到1.4倍时,这些模型可以预测CFRP脱胶,这也与测试结果进行了比较。本文提供的数值研究除了提供有用的数据以进一步深入了解火灾期间CFRP加固系统的结构有效性(即,火灾期间材料中的应变/应力以及CFRP-混凝土界面),还可以验证整体作者先前提出的CFRP与混凝土相互作用的粘结滑移法则,显示了它们在模拟EBR-CFRP增强系统在火源下的行为时的适用性,以及基于满足以下条件的消防系统设计策略两个主要要求:(i)中心区域的CFRP温度必须保持在一定的临界温度以下,以避免其拉伸断裂; (ii)沿锚固长度方向的CFRP-混凝土界面温度必须保持在粘合剂的粘合剂T-g以下,以防止CFRP在所需的火警时间内脱粘。 (C)2015 Elsevier Ltd.保留所有权利。

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