Zhou Lingzhu, Zheng Yu, Taylor Susan E
School of Environment and Civil Engineering, Dongguan University of Technology, Dongguan 523080, China.
Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian 116024, China.
Polymers (Basel). 2018 Jun 18;10(6):678. doi: 10.3390/polym10060678.
The need for a sustainable development and improved whole life performance of concrete infrastructure has led to the requirement of more durable and sustainable concrete bridges alongside accurate predictive analysis tools. Using the combination of Self-Compacting Concrete (SCC) with industrial by-products and fiber-reinforced polymer (FRP), reinforcement is anticipated to address the concerns of high carbon footprint and corrosion in traditional steel-reinforced concrete structures. This paper presents a numerical investigation of the structural behavior of basalt fiber-reinforced polymer (BFRP)-reinforced SCC deck slabs in a real bridge, named Thompson Bridge, constructed in Northern Ireland, U.K. A non-linear finite element (FE) model is proposed by using ABAQUS 6.10 in this study, which is aimed at extending the previous investigation of the field test in Thompson Bridge. The results of this field test were used to validate the accuracy of the proposed finite element model. The results showed good agreement between the test results and the numerical results; more importantly, the compressive membrane action (CMA) inside the slabs could be well demonstrated by this FE model. Subsequently, a series of parametric studies was conducted to investigate the influence of different parameters on the structural performance of the deck slabs in Thompson Bridge. The results of the analyses are discussed, and conclusions on the behavior of the SCC deck slabs reinforced by BFRP bars are presented.
对混凝土基础设施可持续发展和全寿命性能提升的需求,导致需要更耐用、可持续的混凝土桥梁以及精确的预测分析工具。通过将自密实混凝土(SCC)与工业副产品和纤维增强聚合物(FRP)相结合进行加固,有望解决传统钢筋混凝土结构中高碳足迹和腐蚀问题。本文对英国北爱尔兰一座名为汤普森桥的真实桥梁中玄武岩纤维增强聚合物(BFRP)加固的SCC桥面板的结构性能进行了数值研究。本研究使用ABAQUS 6.10提出了一个非线性有限元(FE)模型,旨在扩展之前对汤普森桥现场试验的研究。该现场试验结果用于验证所提有限元模型的准确性。结果表明试验结果与数值结果吻合良好;更重要的是,该有限元模型能够很好地展示桥面板内部的受压薄膜作用(CMA)。随后,进行了一系列参数研究,以探讨不同参数对汤普森桥桥面板结构性能的影响。讨论了分析结果,并给出了关于BFRP筋加固SCC桥面板性能的结论。