FINITE ELEMENT ANALYSIS OF BOND BEHAVIOR IN CORRODED REINFORCED CONCRETE BEAMS: STATE-OF-THE-ART

Arunkumar Y M, Shrilaxmi Prashanth, Poornachandra Pandit, Girish M G, Amogh Shetty
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Abstract

The article conducts a comprehensive examination of various aspects related to rebar corrosion, encompassing the corrosion mechanism, its implications on design criteria, the modeling of bond interfaces under both corroded and non-corroded conditions, and the modeling of reinforced concrete (RC) beams affected by corrosion, employing both empirical and analytical methodologies. The initial stages of corrosion instigate a gradual transformation of rebar into rust. One notable consequence of reinforcement corrosion is the generation of expansive pressure, leading to concrete cracking, spalling, and detachment of the concrete cover. Additionally, it diminishes the effective cross-sectional area of the rebar, ultimately resulting in a decline in the concrete's bond strength and gradual structural deterioration. Ultimately, continuous corrosion can lead to a complete loss of bond between the concrete and rebar, representing the most severe form of damage attributable to corrosion. This poses a critical threat, particularly in cases where the beam functions as an unreinforced structure, potentially culminating in sudden structural failure. This paper primarily underscores the utilization of the Finite Element Method (FEM) for evaluating the impact of bond deterioration between concrete and reinforcement caused by corrosion. The paper effectively employs this technique to predict and analyze the structural damage in corroded RC beam specimens.
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腐蚀钢筋混凝土梁粘结行为的有限元分析:最新
文章采用经验和分析方法,对与钢筋锈蚀有关的各个方面进行了全面研究,包括锈蚀机理、其对设计标准的影响、锈蚀和非锈蚀条件下的粘结界面建模,以及受锈蚀影响的钢筋混凝土(RC)梁的建模。锈蚀的初始阶段会促使钢筋逐渐变成铁锈。钢筋锈蚀的一个显著后果是产生膨胀压力,导致混凝土开裂、剥落和混凝土保护层脱落。此外,钢筋锈蚀还会减小钢筋的有效截面积,最终导致混凝土的粘结强度下降,结构逐渐退化。最终,持续腐蚀会导致混凝土和钢筋之间的粘结力完全丧失,这是腐蚀造成的最严重的损坏形式。这构成了严重的威胁,尤其是在梁作为非加固结构的情况下,可能会导致结构突然失效。本文主要强调利用有限元法 (FEM) 评估锈蚀造成的混凝土与钢筋之间的粘结劣化的影响。本文有效地利用了这一技术来预测和分析锈蚀 RC 梁试件的结构损伤。
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
Journal of Applied Engineering Science
Journal of Applied Engineering Science Engineering-Engineering (all)
CiteScore
2.00
自引率
0.00%
发文量
122
审稿时长
12 weeks
期刊介绍: Since 2002 iipp build cooperation with its clients established on wealthy experience, interchangeable respect and trust and permanently arrangement with the purpose of successfully realization of projects recognizable according to good organization and high quality of provided favors. Working as unique team of highly motivated experts, Institute iipp provides to its customers the most high-quality solutions in domain of engineering consulting.
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