牺牲钢筋增强钢筋混凝土梁的耐火性能

Haley Hostetter, M. Z. Naser, Rami A. Hawileh, Ghada Karaki, Huanting Zhou
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引用次数: 1

摘要

由于混凝土的优越性能,由混凝土制成的结构构件通常可以满足规范和标准中规定的防火要求,而无需特别安装或使用外部保温材料。对消防法规条款的仔细检查表明,它们主要是为新建筑或没有遭受老化或使用创伤的建筑而建立的;如开裂、钢筋腐蚀、徐变等,这些都会对混凝土结构的结构响应产生不利影响,特别是在火灾条件下。为了提高混凝土结构的耐火性,本文提出了利用牺牲层钢筋的简单而经济的解决方案。这些解决方案利用了钢筋和混凝土之间的天然协同作用,有可能减轻火灾引起的开裂和火灾引起的大变形的发展,从而延长钢筋混凝土梁的耐火性。提出的概念的有效性和适用性是通过一个高度复杂的三维热力学非线性有限元模型来强调的。该模型被用于一系列参数研究,以检验影响钢筋和纤维增强聚合物增强混凝土梁火灾响应的关键参数。这些参数包括牺牲加固方案、尺寸和材料类型。结论是,牺牲加固的使用可能有利于缓解目的或作为火灾后事件的修复解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing fire resistance of reinforced concrete beams through sacrificial reinforcement

Due to the superior properties of concrete, structural members made of concrete often satisfy fire requirements specified in codes and standards without special installations or the use of external insulation. A closer examination into fire codal provisions shows that they are primarily founded for new constructions or that which does not suffer from aging or in-service trauma; such as cracking, reinforcement corrosion, creep, etc., all of which can adversely affect the structural response of concrete structures, especially under fire conditions. In order to enhance the fire resistance of concrete structures, this paper presents insights into simple and cost-effective solutions by utilizing sacrificial layer(s) of reinforcement. These solutions capitalize on the natural synergy between reinforcement and concrete and have the potential to mitigate fire-induced cracking and the development of fire-induced large deformation, thereby extending the fire resistance of reinforced concrete beams. The validity and applicability of the proposed concepts are highlighted through a highly complex three-dimensional thermo-mechanical nonlinear-based finite element model. This model was utilized in a series of parametric studies to examine critical parameters influencing the fire response of concrete beams reinforced with steel and fiber-reinforced polymer reinforcement. These parameters include sacrificial reinforcement scheme, size, and material type. It was concluded that the use of sacrificial reinforcement could be beneficial for mitigation purposes or as a repair solution for postfire events.

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