Blind competition on the numerical simulation of slabs reinforced with conventional flexural reinforcement and fibers subjected to punching loading configuration

IF 3 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Joaquim A. O. Barros, Beatriz Sanz, Marcílio Filho, Petr Kabele, Rena C. Yu, Günther Meschke, Jaime Planas, Vitor Cunha, Gerrit E. Neu, Antonio Caggiano, Ventura Gouveia, Nilüfer Ozyurt, Elisa Poveda, Ab van den Bos, Jan Červenka, Erez Gal, Pierre Rossi, Daniel Dias‐da‐Costa, Peter K. Juhasz, David Cendón, Gonzalo Ruiz
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Abstract

This paper describes the 3rd Blind Simulation Competition (BSC) organized by the fib WP 2.4.1 which aims to assess the predictive performance of models based on the finite element method (FEM) for analysis and design of fiber reinforced concrete (FRC) structures submitted to loading and support conditions that promote punching failure mode. Fiber reinforcement is used in an attempt to eliminate conventional punching reinforcement and provide technical and economic advantages. The two tested real‐size prototypes represent a column‐slab interior region of an elevated steel‐fiber reinforced concrete (E‐SFRC) slab where anti‐progressive collapse reinforcement is disposed in the alignment of columns/piles. Despite a punching failure surface being formed in both experimentally tested prototypes at the rupture stage, fiber reinforcement was able to mobilize the yield capacity of the conventional flexural reinforcement, providing high deformation capacity, and ductility to the prototypes. The average post‐peak load‐carrying capacity of the tested prototypes at a deflection seven times higher than the deflection at yield initiation of the conventional reinforcement was still 90% of the average peak load. Regarding the BSC, a total of 26 proposals were received and involved 94 participants from 29 institutions and 17 countries, with 53.9% using smeared crack models (SCMs), 30.8% a concrete damage plasticity (CDP) model, 3.8% discrete crack models (DCMs) and 11.5% considered as “other models.” From these simulations it was verified, in average terms, that SCM assured the best predictive performance apart from the average strain in the SFRC and the maximum crack width which were better predicted by DCM. More accurate predictions were obtained by using in‐house software than by adopting commercial software.
用传统抗弯钢筋和纤维加固的楼板在冲压加载配置下的数值模拟盲赛
本文介绍了由纤维 WP 2.4.1 组织的第三届盲模拟竞赛(BSC),该竞赛旨在评估基于有限元法(FEM)的模型的预测性能,用于分析和设计在促进冲孔破坏模式的加载和支撑条件下的纤维增强混凝土(FRC)结构。使用纤维加固是为了消除传统的冲孔加固,并提供技术和经济优势。两个经过测试的实际尺寸原型代表了高架钢纤维混凝土(E-SFRC)板的柱板内部区域,在柱/桩的排列中设置了防坍塌加固。尽管两个实验测试原型在断裂阶段都形成了冲压破坏面,但纤维加固仍能调动传统抗弯加固的屈服能力,为原型提供高变形能力和延展性。测试原型的平均峰值后承载能力在挠度为传统加固材料屈服起始挠度的七倍时,仍为平均峰值载荷的 90%。关于 BSC,共收到 26 项建议,有来自 17 个国家 29 个机构的 94 名参与者参与,其中 53.9% 使用了抹平裂缝模型 (SCM),30.8% 使用了混凝土损伤塑性模型 (CDP),3.8% 使用了离散裂缝模型 (DCM),11.5% 被视为 "其他模型"。通过这些模拟验证,平均而言,SCM 的预测性能最好,而 DCM 对 SFRC 的平均应变和最大裂缝宽度的预测较好。与采用商业软件相比,使用内部软件可获得更准确的预测结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Structural Concrete
Structural Concrete CONSTRUCTION & BUILDING TECHNOLOGY-ENGINEERING, CIVIL
CiteScore
5.60
自引率
15.60%
发文量
284
审稿时长
3 months
期刊介绍: Structural Concrete, the official journal of the fib, provides conceptual and procedural guidance in the field of concrete construction, and features peer-reviewed papers, keynote research and industry news covering all aspects of the design, construction, performance in service and demolition of concrete structures. Main topics: design, construction, performance in service, conservation (assessment, maintenance, strengthening) and demolition of concrete structures research about the behaviour of concrete structures development of design methods fib Model Code sustainability of concrete structures.
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