钢纤维增强混凝土弯曲断裂行为的中尺度建模

IF 2.1 4区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Yong Yu, Jinjun Xu, Weisen Chen, Bo Wu
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引用次数: 0

摘要

本文对钢纤维增强混凝土(SFRC)的弯曲断裂行为进行了计算研究。重点是利用离散-连续耦合有限元方法研究各种因素对 SFRC 的影响。该方法明确地模拟了每个材料阶段,包括粗集料、砂浆膏、钢纤维和界面过渡区(ITZ),从而可以精确跟踪弯曲过程中的中尺度开裂。在进行参数调查之前,先对模拟方法进行了开发、校准和验证。考虑的关键因素包括粗集料和钢纤维的空间定位、纤维含量、长度和直径以及纤维-砂浆 ITZ 的粘结性能。结果表明,钢纤维会改变缺口梁的裂缝发展,导致主裂缝产生更大的变形。将纤维含量从 0% 增加到 2%,可提高抗弯拉强度,但会带来更多变化。较长的纤维最初会提高强度,然后降低强度,而较粗的纤维则会持续降低强度。改善纤维与砂浆之间的粘结并不能显著提高梁的承载能力。总之,本研究显示了既定方法如何增强对 SFRC 在弯曲-断裂加载下机械响应的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mesoscale modeling of flexural fracture behavior in steel fiber reinforced concrete
This paper presents a computational study on the flexural fracture behaviors of steel fiber reinforced concrete (SFRC). The focus is on investigating the impacts of various factors on SFRC, utilizing a discrete-continuum coupled finite element method. This method explicitly models each material phase, including coarse aggregates, mortar paste, steel fibers and interfacial transition zones (ITZs), allowing precise tracking of mesoscale cracking during bending. The simulation method is developed, calibrated and validated before conducting a parametric investigation. Critical factors considered include the spatial positioning of coarse aggregates and steel fibers, fiber content, length and diameter, and the bonding property of fiber-mortar ITZs. Results indicate that steel fibers modify crack development in notched beams, causing greater distortion in the primary crack. Increasing fiber content from 0 to 2% enhances flexural tensile strength but introduces more variability. Longer fibers initially increase strength, then decrease, while thicker fibers consistently reduce strength. Improving the bond between fibers and mortar does not substantially increase the load-bearing capacity of the beam. In conclusion, this study shows how the established approach enhances understanding of the mechanical responses of SFRC under flexural-fracture loading.
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来源期刊
Advances in Structural Engineering
Advances in Structural Engineering 工程技术-工程:土木
CiteScore
5.00
自引率
11.50%
发文量
230
审稿时长
2.3 months
期刊介绍: Advances in Structural Engineering was established in 1997 and has become one of the major peer-reviewed journals in the field of structural engineering. To better fulfil the mission of the journal, we have recently decided to launch two new features for the journal: (a) invited review papers providing an in-depth exposition of a topic of significant current interest; (b) short papers reporting truly new technologies in structural engineering.
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