Crack width simulation with discrete reinforcement and 3D nonlinear finite element models

IF 5.6 1区 工程技术 Q1 ENGINEERING, CIVIL
Christina Krenn, Dirk Schlicke
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引用次数: 0

Abstract

Crack control is essential for the serviceability and durability of reinforced concrete structures. Until today a variety of crack width calculation models have been proposed, but there is still no generally agreed method provided in standards or literature. Overall, the existing models have different influencing parameters and even the relationship between experimentally measured, numerically simulated and analytically calculated crack widths is not clearly understood. Furthermore, the distinction between crack width at the reinforcement level and at the surface is controversially presented in the literature. This paper presents a detailed numerical finite element volume model for the simulation of crack opening in reinforced concrete that considers reinforcement ribs discretely. This aims to represent the complex stress state in the concrete near the ribs including the internal cracks. A parametric study is performed to determine the main factors influencing the crack width. Comparisons with experimental results show that the model realistically captures the crack width over the depth of the concrete cover. Additionally, comparisons with analytically calculated crack widths indicate that the analytical method based on displaceable bond primarily predicts the surface crack width. The difference between the crack width at the reinforcement level and at the surface is predominantly attributed to internal cracking whereas shear-lag deformations of the concrete itself are insignificant. The study also highlights the importance of distinguishing between the single crack and stabilized crack stages in crack width calculations and emphasizes the need to consider slip-dependent bond stress in analytical models.
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来源期刊
Engineering Structures
Engineering Structures 工程技术-工程:土木
CiteScore
10.20
自引率
14.50%
发文量
1385
审稿时长
67 days
期刊介绍: Engineering Structures provides a forum for a broad blend of scientific and technical papers to reflect the evolving needs of the structural engineering and structural mechanics communities. Particularly welcome are contributions dealing with applications of structural engineering and mechanics principles in all areas of technology. The journal aspires to a broad and integrated coverage of the effects of dynamic loadings and of the modelling techniques whereby the structural response to these loadings may be computed. The scope of Engineering Structures encompasses, but is not restricted to, the following areas: infrastructure engineering; earthquake engineering; structure-fluid-soil interaction; wind engineering; fire engineering; blast engineering; structural reliability/stability; life assessment/integrity; structural health monitoring; multi-hazard engineering; structural dynamics; optimization; expert systems; experimental modelling; performance-based design; multiscale analysis; value engineering. Topics of interest include: tall buildings; innovative structures; environmentally responsive structures; bridges; stadiums; commercial and public buildings; transmission towers; television and telecommunication masts; foldable structures; cooling towers; plates and shells; suspension structures; protective structures; smart structures; nuclear reactors; dams; pressure vessels; pipelines; tunnels. Engineering Structures also publishes review articles, short communications and discussions, book reviews, and a diary on international events related to any aspect of structural engineering.
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