Mohamed Osama Ahmed, Al Hawat Waddah, Keshawarz Mohammad
Departent of Civil Engineering, College of Engineering, Abu Dhabi University, Abu Dhabi PO Box 59911, United Arab Emirates.
Department of Civil & Biomedical Engineering, College of Engineering, Technology, and Architecture, University of Hartford, West Hartford, CT 06117, USA.
Polymers (Basel). 2021 Apr 26;13(9):1402. doi: 10.3390/polym13091402.
Reducing the fingerprint of infrastructure has become and is likely to continue to be at the forefront of stakeholders' interests, including engineers and researchers. It necessary that future buildings produce minimal environmental impact during construction and remain durable for as long as practicably possible. The use of basalt fiber-reinforced polymer (BFRP) bars as a replacement for carbon steel is reviewed in this article by examining the literature from the past two decades with an emphasis on flexural strength, serviceability, and durability. The provisions of selected design and construction guides for flexural members are presented, compared, and discussed. The bond of BFRP bars to the surrounding concrete was reportedly superior to carbon steel when BFRP was helically wrapped and sand coated. Experimental studies confirmed that a bond coefficient = 0.8, which is superior to carbon steel, may be assumed for sand-coated BFRP ribbed bars that are helically wrapped, as opposed to the conservative value of 1.4 suggested by ACI440.1R-15. Code-based models overestimate the cracking load for BFRP-reinforced beams, but they underestimate the ultimate load. Exposure to an alkaline environment at temperatures as high as 60 °C caused a limited reduction in bond strength of BFRP. The durability of BFRP bars is influenced by the type of resin and sizing used to produce the bars.
减少基础设施的足迹已经并可能继续处于包括工程师和研究人员在内的利益相关者关注的前沿。未来的建筑在施工期间产生最小的环境影响并尽可能长时间保持耐用是很有必要的。本文通过研究过去二十年的文献,重点关注抗弯强度、适用性和耐久性,对使用玄武岩纤维增强聚合物(BFRP)筋替代碳钢的情况进行了综述。介绍、比较并讨论了选定的受弯构件设计和施工指南的规定。据报道,当BFRP筋螺旋缠绕并涂砂时,其与周围混凝土的粘结性能优于碳钢。试验研究证实,对于螺旋缠绕的涂砂BFRP带肋筋,可以假定粘结系数为0.8,优于碳钢,而ACI440.1R - 15建议的保守值为1.4。基于规范的模型高估了BFRP增强梁的开裂荷载,但低估了极限荷载。在高达60°C的温度下暴露于碱性环境会使BFRP的粘结强度有有限程度的降低。BFRP筋的耐久性受生产筋所用树脂和浸润剂类型的影响。