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基于三线性软化图的高温下PFRC断裂数值模拟

Numerical Simulation of PFRC Fracture Subjected to High Temperature by Means of a Trilinear Softening Diagram.

作者信息

Suárez Fernando, Enfedaque Alejandro, Alberti Marcos G, Gálvez Jaime C

机构信息

Departamento de Ingeniería Mecánica y Minera, Universidad de Jaén, 23071 Jaén, Spain.

Departamento de Ingeniería Civil-Construcción, Universidad Politécnica de Madrid, E.T.S.I. Caminos, Canales y Puertos, 28040 Madrid, Spain.

出版信息

Materials (Basel). 2023 Sep 3;16(17):6048. doi: 10.3390/ma16176048.

Abstract

Fibre-reinforced concrete (FRC) has been used for decades in certain applications in the construction industry, such as tunnel linings and precast elements, but has experienced important progress in recent times, boosted by the inclusion of guidelines for its use in some national and international standards. Traditional steel fibres have been studied in depth and their performance is well-known, although in recent years new materials have been proposed as possible alternatives. Polyolefin macro-fibres, for instance, have been proven to enhance the mechanical properties of concrete and the parameters that define their behaviour (fibre length, fibre proportion or casting method, for instance) have been identified. These fibres overcome certain traditional problems related to steel fibres, such as corrosion or their interaction with magnetic fields, which can limit the use of steel in some applications. The behaviour of polyolefin fibre-reinforced concrete (PFRC) has been numerically reproduced with success through an embedded cohesive crack formulation that uses a trilinear softening diagram to describe the fracture behaviour of the material. Furthermore, concrete behaves well under high temperatures or fire events, especially when it is compared with other construction materials, but the behaviour of PFRC must be analysed if the use of these fibres is to be extended. To this end, the degradation of PFRC fracture properties has been recently experimentally analysed under a temperature range between 20 °C and 200 °C. As temperature increases, polyolefin fibres modify their mechanical properties and their shape, which reduce their performance as reinforcements of concrete. In this work, those experimental results, which include results of low (3 kg/m) and high (10 kg/m) proportion PFRC specimens, are used as reference to study the fracture behaviour of PFRC exposed to high temperatures from a numerical point of view. The experimental load-deflection diagrams are reproduced by modifying the trilinear diagram used in the cohesive model, which helps to understand how the trilinear diagram parameters are affected by high temperature exposure. Finally, some expressions are proposed to adapt the initial trilinear diagram (obtained with specimens not exposed to high temperature) in order to numerically reproduce the fracture behaviour of PFRC affected by high temperature exposure.

摘要

纤维增强混凝土(FRC)在建筑行业的某些应用中已经使用了数十年,如隧道衬砌和预制构件,但近年来取得了重大进展,这得益于一些国家和国际标准中纳入了其使用指南。传统钢纤维已得到深入研究,其性能广为人知,不过近年来也提出了一些新材料作为可能的替代品。例如,聚烯烃宏观纤维已被证明能增强混凝土的力学性能,并且已经确定了定义其性能的参数(如纤维长度、纤维比例或浇筑方法)。这些纤维克服了与钢纤维相关的某些传统问题,如腐蚀或它们与磁场的相互作用,而这些问题在某些应用中可能会限制钢的使用。聚烯烃纤维增强混凝土(PFRC)的性能已通过一种嵌入式粘结裂缝公式成功地进行了数值再现,该公式使用三线性软化图来描述材料的断裂行为。此外,混凝土在高温或火灾情况下表现良好,特别是与其他建筑材料相比时,但如果要扩大这些纤维的使用范围,就必须分析PFRC的性能。为此,最近对PFRC在20℃至200℃温度范围内的断裂性能退化进行了实验分析。随着温度升高,聚烯烃纤维会改变其力学性能和形状,从而降低其作为混凝土增强材料的性能。在这项工作中,那些实验结果,包括低比例(3kg/m³)和高比例(10kg/m³)PFRC试件的结果,被用作参考,从数值角度研究高温下PFRC的断裂行为。通过修改粘结模型中使用的三线性图来再现实验荷载-挠度图,这有助于理解三线性图参数如何受到高温暴露的影响。最后,提出了一些表达式来调整初始三线性图(由未暴露于高温的试件获得),以便数值再现受高温暴露影响的PFRC的断裂行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a72/10489099/9e612096af20/materials-16-06048-g001.jpg

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