预制节段装配式混凝土梁的疲劳性能分析

IF 2.1 4区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Yan Liang, Shun-En Ren, Ming-Na Tong, Jiang-Nan Zhu, Li Yan
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引用次数: 0

摘要

近年来,装配式桥梁在桥梁建设中得到广泛应用,引发了人们对与桥梁耐久性相关的长期病害的关注。这些问题严重影响了装配式桥梁的疲劳寿命,因此有必要对其疲劳性能进行深入探讨。现有研究主要集中于多纵梁的横向连接,而对纵向预制节段装配式桥梁的研究则明显不足。本文以现有实验为基础,建立了分段装配式混凝土梁的疲劳基准有限元模型,从而弥补了这一空白。研究采用数值模拟来分析整个疲劳过程,检查应力分布、损伤发展,并考虑钢筋腐蚀的影响。此外,还提出了一种基于疲劳残余强度(R)的疲劳寿命预测方法,用于预测预制节段组合梁中混凝土的疲劳寿命(N)。结果显示,预应力钢筋和普通钢筋的应力随着加载周期的增加而增加,在 100,000 个周期左右达到峰值。在整个疲劳加载过程中,混凝土中的压应力保持在较低水平,从而防止了疲劳压缩失效。然而,连接处附近的拉应力会逐渐上升,从而在中跨梁底部产生裂缝。随着持续的循环加载,这些裂缝会向加载点扩展。疲劳寿命预测方法预测的疲劳寿命上下限与混凝土的抗压疲劳试验值非常吻合,所提出的疲劳寿命预测方法高效、准确。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fatigue performance analysis of precast segmental assembled concrete beams
In recent years, assembled bridges have become widely utilized in bridge construction, raising concerns about durability-related bridge diseases over time. These issues significantly impact the fatigue life of assembled bridges, necessitating an in-depth exploration of their fatigue performance. While existing research primarily concentrates on the transverse connection of multiple longitudinal beams, there is a notable dearth of studies on longitudinal precast segmental assembled bridges. This paper addresses this gap by establishing a fatigue benchmark finite element model for segmental assembled concrete beams, building upon existing experiments. The study employs numerical simulation to analyze the entire fatigue process, examining stress distribution, damage development, and considering the influence of reinforcement corrosion. Furthermore, a fatigue life prediction method, based on fatigue residual strength (R), is proposed for predicting the fatigue life (N) of concrete in precast segmental assembled beams. Results reveal that prestressed and ordinary reinforcements experience increasing stress with loading cycles, peaking around 100,000 cycles. Throughout fatigue loading, compressive stress in concrete remains low, preventing fatigue compression failure. However, tensile stress near joints gradually rises, initiating cracks at the mid-span beam’s bottom. With continued cyclic loading, these cracks propagate towards the loading point. The upper and lower limits of fatigue life predicted by the fatigue life prediction method closely align with the compressive fatigue test values of concrete, proposed fatigue life prediction method is efficient and accurate.
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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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