玄武岩纤维增强砂浆加固钢筋混凝土单向板的有限元模拟

IF 1.7 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Multidiscipline Modeling in Materials and Structures Pub Date : 2022-12-02 DOI:10.1108/mmms-07-2022-0134
N. Revanna, Charles K. S. Moy
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引用次数: 0

摘要

目的采用织物-钢筋应变比较法,采用有限元方法研究了织物-砂浆(TRM)加固钢筋混凝土单向板构件的受弯响应。玄武岩TRM(BTRM)是一种在结构加固应用中相对较新的复合材料。BTRM的实验数据在文献中是有限的,数值分析可以帮助进一步理解这种复合材料。有了这个概念,Abaqus有限元软件被用来创建一种数值方法来捕捉加固板构件的力学响应,而不是耗时的实验室实验。设计/方法/方法利用文献中玄武岩TRM加固单向板的现有实验数据集,开发并验证了一种数值方法。根据实验要求,使用显式求解器来分析使用校准的混凝土损伤塑性(CDP)参数创建的有限元模型。所生成的模型用于提取从选定的实验参考中观察到的加固钢筋混凝土板所承受的荷载、挠度和钢筋应变。通过将纺织纤维产生的有限元拉伸应变与现有公式进行比较,研究了所开发模型的适用性,超出了参数研究的范围。所做的CDP校准结果表明了它的适应性。数值分析的载荷与挠度、拉伸和压缩损伤模式的预测结果与实验数据吻合良好。对不同混凝土强度、织物间距和TRM粘结长度的参数研究表明,TRM的优点及其在外部加固应用中的优越性。一组五个用来预测实验应变的公式显示出不同的准确性。独创性/价值所开发的数值模型考虑了纺织纤维所承受的应变,使结果更加稳健和可靠。数值研究得到的应变与实验结果吻合较好。
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Finite element modelling of reinforced concrete one-way slabs strengthened using basalt textile reinforced mortars
PurposeThis paper employs a textile reinforcement strain comparison to study the response of Textile Reinforced Mortars (TRM) strengthened reinforced concrete one-way slab members in flexure using the finite element method. Basalt TRM (BTRM) is a relatively new composite in structural strengthening applications. Experimental data on BTRMs are limited in the literature and numerical analyses can help further the understanding of this composite. With this notion, Abaqus finite element software is utilised to create a numerical method to capture the mechanical response of strengthened slab members instead of time-consuming laboratory experiments.Design/methodology/approachA numerical method is developed and validated using existing experimental data set on one-way slabs strengthened using Basalt TRMs from the literature. An explicit solver is utilised to analyse the finite element model created using calibrated Concrete Damage Plasticity (CDP) parameters according to the experimental requirements. The generated model is applied to extract load, deflection and rebar strains sustained by strengthened reinforced concrete slabs as observed from the experimental reference chosen. The applicability of the developed model was studied beyond parametric studies by comparing the generated finite element tensile strain by the textile fibre with available formulae.FindingsCDP calibration done has shown its adaptability. The predicted results in the form of load versus deflection, tensile and compressive damage patterns from the numerical analysis showed good agreement with the experimental data. A parametric study on various concrete strength, textile spacing and TRM bond length obtained shows TRM’s advantages and its favourability for external strengthening applications. A set of five formulae considered to predict the experimental strain showed varied accuracy.Originality/valueThe developed numerical model considers strain sustained by the textile fibre to make results more robust and reliable. The obtained strain from the numerical study showed good agreement with the experiment results.
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来源期刊
CiteScore
3.70
自引率
5.00%
发文量
60
期刊介绍: Multidiscipline Modeling in Materials and Structures is published by Emerald Group Publishing Limited from 2010
期刊最新文献
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